NCBI Taxonomy: 4219

Artemisia (ncbi_taxid: 4219)

found 500 associated metabolites at genus taxonomy rank level.

Ancestor: Artemisiinae

Child Taxonomies: Artemisia annua, Artemisia arctica, Artemisia vulgaris, Artemisia alba, Artemisia afra, Artemisia cana, Artemisia nova, Artemisia cina, Artemisia copa, Artemisia argyi, Artemisia dubia, Artemisia minor, Artemisia flava, Artemisia tridentata, Artemisia aurata, Artemisia vexans, Artemisia alpina, Artemisia incisa, Artemisia feddei, Artemisia fukudo, Artemisia rigida, Artemisia nakaii, Artemisia elenae, Artemisia finita, Artemisia indica, Artemisia genipi, Artemisia incana, Artemisia valida, Artemisia lancea, Artemisia atrata, Artemisia nitida, Artemisia nutans, Artemisia limosa, Artemisia ramosa, Artemisia comata, Artemisia dolosa, Artemisia gobica, Artemisia juncea, Artemisia obscura, Artemisia vestita, Artemisia hedinii, Artemisia sericea, Artemisia frigida, Artemisia furcata, Artemisia superba, Artemisia stricta, Artemisia palmeri, Artemisia pygmaea, Artemisia aucheri, Artemisia judaica, Artemisia persica, Artemisia ruthiae, Artemisia apiacea, Artemisia pallens, Artemisia bicolor, Artemisia assoana, Artemisia porteri, Artemisia deserti, Artemisia papposa, Artemisia deversa, Artemisia scotina, Artemisia prattii, Artemisia simplex, Artemisia viscida, Artemisia araxina, Artemisia inculta, Artemisia reptans, Artemisia serrata, Artemisia sieberi, Artemisia tilesii, Artemisia diffusa, Artemisia nitrosa, Artemisia demissa, Artemisia dimoana, Artemisia globosa, Artemisia sodiroi, Artemisia kelleri, Artemisia montana, Artemisia pontica, Artemisia anomala, Artemisia adamsii, Artemisia biennis, Artemisia taurica, Artemisia umbrosa, Artemisia wellbyi, Artemisia badhysi, Artemisia lagopus, Artemisia opulenta, Artemisia pamirica, Artemisia thuscula, Artemisia insipida, Artemisia turanica, Artemisia radicans, Artemisia rubripes, Artemisia gypsacea, Artemisia leucodes, Artemisia bothnica, Artemisia insulana, Artemisia monogyna, Artemisia porrecta, Artemisia japonica, Artemisia serotina, Artemisia arenaria, Artemisia sibirica, Artemisia sogdiana, Artemisia eriantha, Artemisia princeps, Artemisia imponens, Artemisia albicans, Artemisia capitata, Artemisia igniaria, Artemisia sacrorum, Artemisia fragrans, Artemisia scoparia, Artemisia elongata, Artemisia paradoxa, Artemisia argentea, Artemisia cretacea, Artemisia giraldii, Artemisia eriopoda, Artemisia glabella, Artemisia maritima, Artemisia ordosica, Artemisia pewzowii, Artemisia alaskana, Artemisia subulata, Artemisia borealis, Artemisia waltonii, Artemisia compacta, Artemisia gmelinii, Artemisia gorgonum, Artemisia jacutica, Artemisia palustris, Artemisia schimperi, Artemisia pubescens, Artemisia araratica, Artemisia abrotanum, Artemisia tangutica, Artemisia arbuscula, Artemisia bigelovii, Artemisia filifolia, Artemisia keiskeana, Artemisia rupestris, Artemisia sylvatica, Artemisia austriaca, Artemisia spicigera, Artemisia iwayomogi, Artemisia rutifolia, Artemisia santolina, Artemisia freitagii, Artemisia carruthii, Artemisia caucasica, Artemisia armeniaca, Artemisia korovinii, Artemisia lercheana, Artemisia mutellina, Artemisia meyeriana, Artemisia argillosa, Artemisia oranensis, Artemisia nesiotica, Artemisia rhodantha, Artemisia glacialis, Artemisia forrestii, Artemisia semiarida, Artemisia grenardii, Artemisia myriantha, Artemisia macrantha, Artemisia vachanica, Artemisia arenicola, Artemisia eranthema, Artemisia lucentica, Artemisia molinieri, Artemisia splendens, Artemisia atlantica, Artemisia australis, Artemisia mauiensis, Artemisia oelandica, Artemisia hololeuca, Artemisia kawakamii, Artemisia jordanica, Artemisia macilenta, Artemisia medioxima, Artemisia momiyamae, Artemisia mongolica, Artemisia assurgens, Artemisia songarica, Artemisia tanaitica, Artemisia zayuensis, Artemisia commutata, Artemisia freyniana, Artemisia glomerata, Artemisia camelorum, Artemisia mendozana, Artemisia gurganica, Artemisia halophila, Artemisia aralensis, Artemisia koidzumii, Artemisia kruhsiana, Artemisia laciniata, Artemisia norvegica, Artemisia obtusiloba, Artemisia brachyloba, Artemisia abyssinica, Artemisia phaeolepis, Artemisia punctigera, Artemisia subarctica, Artemisia subviscosa, Artemisia kanashiroi, Artemisia comaiensis, Artemisia brevifolia, Artemisia kotuchovii, Artemisia rothrockii, Artemisia ciniformis, Artemisia tripartita, Artemisia oliveriana, Artemisia capillaris, Artemisia monophylla, Artemisia spinescens, Artemisia sinanensis, Artemisia densiflora, Artemisia ifranensis, Artemisia karatavica, Artemisia lindleyana, Artemisia longifolia, Artemisia packardiae, Artemisia atrovirens, Artemisia scopulorum, Artemisia pedatifida, Artemisia anethoides, Artemisia macarthuri, Artemisia tenuisecta, Artemisia mattfeldii, Artemisia mongolorum, Artemisia constricta, Artemisia herba-alba, Artemisia parviflora, Artemisia absinthium, Artemisia barrelieri, Artemisia campestris, Artemisia gilvescens, Artemisia monosperma, Artemisia suksdorfii, Artemisia baxoiensis, Artemisia oligocarpa, Artemisia batakensis, Artemisia eremophila, Artemisia carvifolia, Artemisia flahaultii, Artemisia kauaiensis, Artemisia desertorum, Artemisia albicerata, Artemisia santonicum, Artemisia lactiflora, Artemisia lithophila, Artemisia oxycephala, Artemisia quettensis, Artemisia sosnovskyi, Artemisia androsacea, Artemisia tomentella, Artemisia vallesiaca, Artemisia caespitosa, Artemisia xylorrhiza, Artemisia globularia, Artemisia echegarayi, Artemisia hyperborea, Artemisia pauciflora, Artemisia klementzae, Artemisia manshurica, Artemisia x wurzellii, Artemisia pycnorrhiza, Artemisia samoiedorum, Artemisia xanthochroa, Artemisia xerophytica, Artemisia canariensis, Artemisia kurramensis, Artemisia californica, Artemisia ludoviciana, Artemisia scopiformis, Artemisia selengensis, Artemisia stolonifera, Artemisia turcomanica, Artemisia incanescens, Artemisia sieversiana, Artemisia halodendron, Artemisia pedunculosa, Artemisia balchanorum, Artemisia leucotricha, Artemisia deserticola, Artemisia spiciformis, Artemisia ghazniensis, Artemisia ghoratensis, Artemisia douglasiana, Artemisia x jaeggiana, Artemisia kaschgarica, Artemisia kermanensis, Artemisia klotzchiana, Artemisia korshinskyi, Artemisia pattersonii, Artemisia namanganica, Artemisia anethifolia, Artemisia pedemontana, Artemisia tecti-mundi, Artemisia lagocephala, Artemisia thomsoniana, Artemisia stelleriana, Artemisia salsoloides, Artemisia dracunculus, Artemisia granatensis, Artemisia verlotiorum, Artemisia lessingiana, Artemisia martirensis, Artemisia melanolepis, Artemisia arborescens, Artemisia ferganensis, Artemisia edgeworthii, Artemisia globosoides, Artemisia littoricola, Artemisia nanschanica, Artemisia schmidtiana, Artemisia schrenkiana, Artemisia lehmanniana, Artemisia subdigitata, Artemisia xigazeensis, Artemisia depauperata, Artemisia magellanica, Artemisia leucophylla, Artemisia michauxiana, Artemisia monostachya, Artemisia unalaskensis, Artemisia roxburghiana, Artemisia borotalensis, Artemisia stenocephala, Artemisia khorassanica, Artemisia diversifolia, Artemisia chitralensis, Artemisia dubjanskyana, Artemisia dzevanovskyi, Artemisia argyrophylla, Artemisia knorringiana, Artemisia macrocephala, unclassified Artemisia, Artemisia schischkinii, Artemisia viridisquama, Artemisia inaequifolia, Artemisia terrae-albae, Artemisia phyllobotrys, Artemisia tianschanica, Artemisia thellungiana, Artemisia caerulescens, Artemisia crithmifolia, Artemisia baldshuanica, Artemisia gracilescens, Artemisia kitadakensis, Artemisia kochiiformis, Artemisia mesatlantica, Artemisia ledebouriana, Artemisia pycnocephala, Artemisia glanduligera, Artemisia integrifolia, Artemisia transiliensis, Artemisia senjavinensis, Artemisia tanacetifolia, Artemisia aschurbajewii, Artemisia haussknechtii, Artemisia marschalliana, Artemisia heptapotamica, Artemisia franserioides, Artemisia kandaharensis, Artemisia blepharolepis, Artemisia stechmanniana, Artemisia umbelliformis, Artemisia morrisonensis, Artemisia arctisibirica, Artemisia moorcroftiana, Artemisia saposhnikovii, Artemisia bargusinensis, Artemisia issykkulensis, Artemisia sphaerocephala, Artemisia lavandulifolia, Artemisia sublessingiana, Artemisia kopetdaghensis, Artemisia tschernieviana, Artemisia dracunculoides, Artemisia santolinifolia, Artemisia maximovicziana, Artemisia potentilloides, Artemisia tournefortiana, Artemisia hallaisanensis, Artemisia intramongolica, Artemisia kuschakewiczii, Artemisia czekanowskiana, Artemisia leontopodioides, Artemisia chamaemelifolia, Artemisia niitakayamensis, Artemisia laciniatiformis, Artemisia dracunculiformis, Artemisia austroyunnanensis, Artemisia duthreuil-de-rhinsii, Artemisia princeps x Artemisia vulgaris, Artemisia mongolica x Artemisia princeps

Isoliquiritigenin

(E)-1-(2,4-dihydroxyphenyl)-3-(4-hydroxyphenyl)prop-2-en-1-one

C15H12O4 (256.0735552)


Isoliquiritigenin is a member of the class of chalcones that is trans-chalcone hydroxylated at C-2, -4 and -4. It has a role as an EC 1.14.18.1 (tyrosinase) inhibitor, a biological pigment, a NMDA receptor antagonist, a GABA modulator, a metabolite, an antineoplastic agent and a geroprotector. It is functionally related to a trans-chalcone. It is a conjugate acid of an isoliquiritigenin(1-). Isoliquiritigenin is a precursor to several flavonones in many plants. Isoliquiritigenin is a natural product found in Pterocarpus indicus, Dracaena draco, and other organisms with data available. See also: Glycyrrhiza Glabra (part of); Glycyrrhiza uralensis Root (part of); Pterocarpus marsupium wood (part of). Isolated from Medicago subspecies Isoliquiritigenin is found in many foods, some of which are cocoa bean, purple mangosteen, blackcurrant, and chives. A member of the class of chalcones that is trans-chalcone hydroxylated at C-2, -4 and -4. Isoliquiritigenin is found in pulses. Isoliquiritigenin is isolated from Medicago specie D004791 - Enzyme Inhibitors Isoliquiritigenin is an anti-tumor flavonoid from the root of Glycyrrhiza uralensis Fisch., which inhibits aldose reductase with an IC50 of 320 nM. Isoliquiritigenin is a potent inhibitor of influenza virus replication with an EC50 of 24.7 μM. Isoliquiritigenin is an anti-tumor flavonoid from the root of Glycyrrhiza uralensis Fisch., which inhibits aldose reductase with an IC50 of 320 nM. Isoliquiritigenin is a potent inhibitor of influenza virus replication with an EC50 of 24.7 μM.

   

Vanillic acid

4-hydroxy-3-methoxybenzoic acid

C8H8O4 (168.0422568)


Vanillic acid is a phenolic acid found in some forms of vanilla and many other plant extracts. It is a flavouring and scent agent that produces a pleasant, creamy odour. It is the intermediate product in the two-step bioconversion of ferulic acid to vanillin (J Biotechnol 1996;50(2-3):107-13). Vanillic acid, which is a chlorogenic acid, is an oxidized form of vanillin. It is also an intermediate in the production of vanillin from ferulic acid. Vanillic acid is a metabolic byproduct of caffeic acid and is often found in the urine of humans who have consumed coffee, chocolate, tea, and vanilla-flavoured confectionary. Vanillic acid selectively and specifically inhibits 5nucleotidase activity (PMID: 16899266). Vanillic acid is a microbial metabolite found in Amycolatopsis, Delftia, and Pseudomonas (PMID: 11152072, 10543794, 11728709, 9579070). Vanillic acid is a phenolic acid found in some forms of vanilla and many other plant extracts. It is a flavoring and scent agent that produces a pleasant, creamy odor. It is the intermediate product in the two-step bioconversion of ferulic acid to vanillin. (J Biotechnol 1996;50(2-3):107-13). Vanillic acid, which is a chlorogenic acid, is an oxidized form of vanillin. It is also an intermediate in the production of vanillin from ferulic acid. Vanillic acid is a metabolic byproduct of caffeic acid and is often found in the urine of humans who have consumed coffee, chocolate, tea and vanilla-flavored confectionary. Vanillic acid selectively and specifically inhibits 5nucleotidase activity. (PMID: 16899266). Vanillic acid is a monohydroxybenzoic acid that is 4-hydroxybenzoic acid substituted by a methoxy group at position 3. It has a role as a plant metabolite. It is a monohydroxybenzoic acid and a methoxybenzoic acid. It is a conjugate acid of a vanillate. Vanillic acid is a natural product found in Ficus septica, Haplophyllum cappadocicum, and other organisms with data available. Vanillic acid is a metabolite found in or produced by Saccharomyces cerevisiae. A flavoring agent. It is the intermediate product in the two-step bioconversion of ferulic acid to vanillin. (J Biotechnol 1996;50(2-3):107-13). A monohydroxybenzoic acid that is 4-hydroxybenzoic acid substituted by a methoxy group at position 3. Vanillic acid. CAS Common Chemistry. CAS, a division of the American Chemical Society, n.d. https://commonchemistry.cas.org/detail?cas_rn=121-34-6 (retrieved 2024-06-29) (CAS RN: 121-34-6). Licensed under the Attribution-Noncommercial 4.0 International License (CC BY-NC 4.0). Vanillic acid is a flavoring agent found in edible plants and fruits, also found in Angelica sinensis. Vanillic acid inhibits NF-κB activation. Anti-inflammatory, antibacterial, and chemopreventive effects[1]. Vanillic acid is a flavoring agent found in edible plants and fruits, also found in Angelica sinensis. Vanillic acid inhibits NF-κB activation. Anti-inflammatory, antibacterial, and chemopreventive effects[1].

   

Camphor

Bicyclo[2.2.1]heptan-2-one, 1,7,7-trimethyl-, (.+/-.)-

C10H16O (152.12010859999998)


Camphor appears as a colorless or white colored crystalline powder with a strong mothball-like odor. About the same density as water. Emits flammable vapors above 150 °F. Used to make moth proofings, pharmaceuticals, and flavorings. Camphor is a cyclic monoterpene ketone that is bornane bearing an oxo substituent at position 2. A naturally occurring monoterpenoid. It has a role as a plant metabolite. It is a bornane monoterpenoid and a cyclic monoterpene ketone. Camphor is a natural product found in Xylopia aromatica, Xylopia sericea, and other organisms with data available. A bicyclic monoterpene ketone found widely in plants, especially CINNAMOMUM CAMPHORA. It is used topically as a skin antipruritic and as an anti-infective agent. A cyclic monoterpene ketone that is bornane bearing an oxo substituent at position 2. A naturally occurring monoterpenoid. C254 - Anti-Infective Agent > C28394 - Topical Anti-Infective Agent D000890 - Anti-Infective Agents relative retention time with respect to 9-anthracene Carboxylic Acid is 0.986 Camphor ((±)-Camphor) is a topical anti-infective and anti-pruritic and internally as a stimulant and carminative. However, Camphor is poisonous when ingested. Antiviral, antitussive, and anticancer activities[1]. Camphor is a TRPV3 agonist[2]. Camphor ((±)-Camphor) is a topical anti-infective and anti-pruritic and internally as a stimulant and carminative. However, Camphor is poisonous when ingested. Antiviral, antitussive, and anticancer activities[1]. Camphor is a TRPV3 agonist[2].

   

Luteolin

2-(3,4-dihydroxyphenyl)-5,7-dihydroxy-4H-chromen-4-one

C15H10O6 (286.047736)


Luteolin is a naturally occurring flavonoid. (PMID:17168665). The flavonoids are polyphenolic compounds found as integral components of the human diet. They are universally present as constituents of flowering plants, particularly of food plants. The flavonoids are phenyl substituted chromones (benzopyran derivatives) consisting of a 15-carbon basic skeleton (C6-C3-C6), composed of a chroman (C6-C3) nucleus (the benzo ring A and the heterocyclic ring C), also shared by the tocopherols, with a phenyl (the aromatic ring B) substitution usually at the 2-position. Different substitutions can typically occur in the rings, A and B. Several plants and spices containing flavonoid derivatives have found application as disease preventive and therapeutic agents in traditional medicine in Asia for thousands of years. The selection of a particular food plant, plant tissue or herb for its potential health benefits appears to mirror its flavonoid composition. The much lower risk of colon, prostate and breast cancers in Asians, who consume more vegetables, fruits and tea than populations in the Western hemisphere do, raises the question of whether flavonoid components mediate the protective effects of diets rich in these foodstuffs by acting as natural chemopreventive and anticancer agents. An impressive body of information exists on the antitumoral action of plant flavonoids. In vitro work has concentrated on the direct and indirect actions of flavonoids on tumor cells, and has found a variety of anticancer effects such as cell growth and kinase activity inhibition, apoptosis induction, suppression of the secretion of matrix metalloproteinases and of tumor invasive behavior. Furthermore, some studies have reported the impairment of in vivo angiogenesis by dietary flavonoids. Experimental animal studies indicate that certain dietary flavonoids possess antitumoral activity. The hydroxylation pattern of the B ring of the flavones and flavonols, such as luteolin seems to critically influence their activities, especially the inhibition of protein kinase activity and antiproliferation. The different mechanisms underlying the potential anticancer action of plant flavonoids await further elucidation. Certain dietary flavonols and flavones targeting cell surface signal transduction enzymes, such as protein tyrosine and focal adhesion kinases, and the processes of angiogenesis appear to be promising candidates as anticancer agents. Further in vivo studies of these bioactive constituents is deemed necessary in order to develop flavonoid-based anticancer strategies. In view of the increasing interest in the association between dietary flavonoids and cancer initiation and progression, this important field is likely to witness expanded effort and to attract and stimulate further vigorous investigations (PMID:16097445). Luteolin is a tetrahydroxyflavone in which the four hydroxy groups are located at positions 3, 4, 5 and 7. It is thought to play an important role in the human body as an antioxidant, a free radical scavenger, an anti-inflammatory agent and an immune system modulator as well as being active against several cancers. It has a role as an EC 2.3.1.85 (fatty acid synthase) inhibitor, an antineoplastic agent, a vascular endothelial growth factor receptor antagonist, a plant metabolite, a nephroprotective agent, an angiogenesis inhibitor, a c-Jun N-terminal kinase inhibitor, an anti-inflammatory agent, an apoptosis inducer, a radical scavenger and an immunomodulator. It is a 3-hydroxyflavonoid and a tetrahydroxyflavone. It is a conjugate acid of a luteolin-7-olate. Luteolin is a natural product found in Verbascum lychnitis, Carex fraseriana, and other organisms with data available. Luteolin is a naturally-occurring flavonoid, with potential anti-oxidant, anti-inflammatory, apoptosis-inducing and chemopreventive activities. Upon administration, luteolin scavenges free radicals, protects cells from reactive oxygen species (ROS)-induced damage and induces direct cell cycle arrest and apoptosis in tumor cells. This inhibits tumor cell proliferation and suppresses metastasis. 5,7,3,4-tetrahydroxy-flavone, one of the FLAVONES. See also: Chamomile (part of); Cannabis sativa subsp. indica top (part of); Fenugreek seed (part of). A tetrahydroxyflavone in which the four hydroxy groups are located at positions 3, 4, 5 and 7. It is thought to play an important role in the human body as an antioxidant, a free radical scavenger, an anti-inflammatory agent and an immune system modulator as well as being active against several cancers. Flavone v. widespread in plant world; found especies in celery, peppermint, rosemary, thyme and Queen Annes Lace leaves (wild carrot). Potential nutriceutical. Luteolin is found in many foods, some of which are soy bean, ginger, abalone, and swiss chard. Acquisition and generation of the data is financially supported in part by CREST/JST. IPB_RECORD: 361; CONFIDENCE confident structure CONFIDENCE standard compound; INTERNAL_ID 48 Luteolin (Luteoline), a flavanoid compound, is a potent Nrf2 inhibitor. Luteolin has anti-inflammatory, anti-cancer properties, including the induction of apoptosis and cell cycle arrest, and the inhibition of metastasis and angiogenesis, in several cancer cell lines, including human non-small lung cancer cells[1][2][3]. Luteolin (Luteoline), a flavanoid compound, is a potent Nrf2 inhibitor. Luteolin has anti-inflammatory, anti-cancer properties, including the induction of apoptosis and cell cycle arrest, and the inhibition of metastasis and angiogenesis, in several cancer cell lines, including human non-small lung cancer cells[1][2][3].

   

Genkwanin

5-Hydroxy-2-(4-hydroxyphenyl)-7-methoxy-4H-chromen-4-one

C16H12O5 (284.0684702)


Genkwanin, also known as 5,4-dihydroxy-7-methoxyflavone or 7-methylapigenin, is a member of the class of compounds known as 7-o-methylated flavonoids. 7-o-methylated flavonoids are flavonoids with methoxy groups attached to the C7 atom of the flavonoid backbone. Thus, genkwanin is considered to be a flavonoid lipid molecule. Genkwanin is practically insoluble (in water) and a very weakly acidic compound (based on its pKa). Genkwanin is a bitter tasting compound and can be found in a number of food items such as winter savory, sweet basil, rosemary, and common sage, which makes genkwanin a potential biomarker for the consumption of these food products. Genkwanin is an O-methylated flavone, a type of flavonoid. It can be found in the seeds of Alnus glutinosa, and the leaves of the ferns Notholaena bryopoda and Asplenium normale . Genkwanin is a major non-glycosylated flavonoid with anti-flammatory activities. Genkwanin is a major non-glycosylated flavonoid with anti-flammatory activities.

   

Coniferaldehyde

(E)-3-(4-hydroxy-3-methoxyphenyl)prop-2-enal

C10H10O3 (178.062991)


Coniferaldehyde (CAS: 458-36-6), also known as 4-hydroxy-3-methoxycinnamaldehyde or ferulaldehyde, belongs to the class of organic compounds known as methoxyphenols. Methoxyphenols are compounds containing a methoxy group attached to the benzene ring of a phenol moiety. Coniferaldehyde is an extremely weak basic (essentially neutral) compound (based on its pKa). Outside of the human body, coniferaldehyde is found, on average, in the highest concentration within sherries. Coniferaldehyde has also been detected, but not quantified in, several different foods, such as highbush blueberries, lima beans, Chinese cabbages, loquats, and greenthread tea. This could make coniferaldehyde a potential biomarker for the consumption of these foods. BioTransformer predicts that coniferaldehyde is a product of caffeic aldehyde metabolism via a catechol-O-methylation-pattern2 reaction catalyzed by the enzyme catechol O-methyltransferase (PMID: 30612223). Coniferyl aldehyde, also known as 4-hydroxy-3-methoxycinnamaldehyde or 4-hm-ca, is a member of the class of compounds known as methoxyphenols. Methoxyphenols are compounds containing a methoxy group attached to the benzene ring of a phenol moiety. Coniferyl aldehyde is slightly soluble (in water) and a very weakly acidic compound (based on its pKa). Coniferyl aldehyde can be found in a number of food items such as pear, common walnut, kelp, and citrus, which makes coniferyl aldehyde a potential biomarker for the consumption of these food products. Coniferyl aldehyde is a low molecular weight phenolic compound susceptible to be extracted from cork stoppers into wine . Coniferyl aldehyde is a member of the class of cinnamaldehydes that is cinnamaldehyde substituted by a hydroxy group at position 4 and a methoxy group at position 3. It has a role as an antifungal agent and a plant metabolite. It is a member of cinnamaldehydes, a phenylpropanoid and a member of guaiacols. It is functionally related to an (E)-cinnamaldehyde. 4-Hydroxy-3-methoxycinnamaldehyde is a natural product found in Pandanus utilis, Microtropis japonica, and other organisms with data available. A member of the class of cinnamaldehydes that is cinnamaldehyde substituted by a hydroxy group at position 4 and a methoxy group at position 3. Acquisition and generation of the data is financially supported in part by CREST/JST. Coniferaldehyde (Ferulaldehyde) is an effective inducer of heme oxygenase-1 (HO-1). Coniferaldehyde exerts anti-inflammatory properties in response to LPS. Coniferaldehyde inhibits LPS-induced apoptosis through the PKCα/β II/Nrf-2/HO-1 dependent pathway in RAW264.7 macrophage cells[1]. Coniferaldehyde (Ferulaldehyde) is an effective inducer of heme oxygenase-1 (HO-1). Coniferaldehyde exerts anti-inflammatory properties in response to LPS. Coniferaldehyde inhibits LPS-induced apoptosis through the PKCα/β II/Nrf-2/HO-1 dependent pathway in RAW264.7 macrophage cells Coniferaldehyde. CAS Common Chemistry. CAS, a division of the American Chemical Society, n.d. https://commonchemistry.cas.org/detail?cas_rn=458-36-6 (retrieved 2024-09-04) (CAS RN: 458-36-6). Licensed under the Attribution-Noncommercial 4.0 International License (CC BY-NC 4.0).

   

Salicylic acid

2-hydroxybenzoic acid

C7H6O3 (138.0316926)


Salicylic acid is a monohydroxybenzoic acid that is benzoic acid with a hydroxy group at the ortho position. It is obtained from the bark of the white willow and wintergreen leaves. It has a role as an antiinfective agent, an antifungal agent, a keratolytic drug, an EC 1.11.1.11 (L-ascorbate peroxidase) inhibitor, a plant metabolite, an algal metabolite and a plant hormone. It is a conjugate acid of a salicylate. It is a colorless solid, it is a precursor to and a metabolite of aspirin (acetylsalicylic acid). It is a plant hormone. The name is from Latin salix for willow tree. It is an ingredient in some anti-acne products. Salts and esters of salicylic acid are known as salicylates. Salicylic acid modulates COX1 enzymatic activity to decrease the formation of pro-inflammatory prostaglandins. Salicylate may competitively inhibit prostaglandin formation. Salicylates antirheumatic (nonsteroidal anti-inflammatory) actions are a result of its analgesic and anti-inflammatory mechanisms. Salicylic acid works by causing the cells of the epidermis to slough off more readily, preventing pores from clogging up, and allowing room for new cell growth. Salicylic acid inhibits the oxidation of uridine-5-diphosphoglucose (UDPG) competitively with nicotinamide adenosine dinucleotide and noncompetitively with UDPG. It also competitively inhibits the transferring of glucuronyl group of uridine-5-phosphoglucuronic acid to the phenolic acceptor. The wound-healing retardation action of salicylates is probably due mainly to its inhibitory action on mucopolysaccharide synthesis. Salicylic acid is biosynthesized from the amino acid phenylalanine. In Arabidopsis thaliana, it can be synthesized via a phenylalanine-independent pathway. Salicylic acid is an odorless white to light tan solid. Sinks and mixes slowly with water. (USCG, 1999) Salicylic acid is a monohydroxybenzoic acid that is benzoic acid with a hydroxy group at the ortho position. It is obtained from the bark of the white willow and wintergreen leaves. It has a role as an antiinfective agent, an antifungal agent, a keratolytic drug, an EC 1.11.1.11 (L-ascorbate peroxidase) inhibitor, a plant metabolite, an algal metabolite and a plant hormone. It is a conjugate acid of a salicylate. A compound obtained from the bark of the white willow and wintergreen leaves, and also prepared synthetically. It has bacteriostatic, fungicidal, and keratolytic actions. Its salts, the salicylates, are used as analgesics. Salicylic acid is a metabolite found in or produced by Escherichia coli (strain K12, MG1655). Salicylic Acid is a beta hydroxy acid that occurs as a natural compound in plants. It has direct activity as an anti-inflammatory agent and acts as a topical antibacterial agent due to its ability to promote exfoliation. A compound obtained from the bark of the white willow and wintergreen leaves, and also prepared synthetically. It has bacteriostatic, fungicidal, and keratolytic actions. Its salts, the salicylates, are used as analgesics. A compound obtained from the bark of the white willow and wintergreen leaves. It has bacteriostatic, fungicidal, and keratolytic actions. See also: Benzoic Acid (has active moiety); Methyl Salicylate (active moiety of); Benzyl salicylate (is active moiety of) ... View More ... A monohydroxybenzoic acid that is benzoic acid with a hydroxy group at the ortho position. It is obtained from the bark of the white willow and wintergreen leaves. Salicylic acid. CAS Common Chemistry. CAS, a division of the American Chemical Society, n.d. https://commonchemistry.cas.org/detail?cas_rn=69-72-7 (retrieved 2024-06-29) (CAS RN: 69-72-7). Licensed under the Attribution-Noncommercial 4.0 International License (CC BY-NC 4.0). Salicylic acid (2-Hydroxybenzoic acid) inhibits cyclo-oxygenase-2 (COX-2) activity independently of transcription factor (NF-κB) activation[1]. Salicylic acid (2-Hydroxybenzoic acid) inhibits cyclo-oxygenase-2 (COX-2) activity independently of transcription factor (NF-κB) activation[1].

   

L-Leucine

(2S)-2-amino-4-methylpentanoic acid

C6H13NO2 (131.0946238)


Leucine (Leu) or L-leucine is an alpha-amino acid. These are amino acids in which the amino group is attached to the carbon atom immediately adjacent to the carboxylate group (alpha carbon). Amino acids are organic compounds that contain amino (‚ÄìNH2) and carboxyl (‚ÄìCOOH) functional groups, along with a side chain (R group) specific to each amino acid. L-leucine is one of 20 proteinogenic amino acids, i.e., the amino acids used in the biosynthesis of proteins. Leucine is found in all organisms ranging from bacteria to plants to animals. It is classified as a non-polar, uncharged (at physiological pH) aliphatic amino acid. Leucine is essential in humans, meaning the body cannot synthesize it, and it must be obtained from the diet. Human dietary sources are foods that contain protein, such as meats, dairy products, soy products, beans and legumes. L-Leucine is a branched chain amino acid (BCAA). The BCAAs consist of leucine, valine and isoleucine (and occasionally threonine). BCAAs are essential amino acids whose carbon structure is marked by a branch point at the beta-carbon position. BCAAs are critical to human life and are particularly involved in stress, energy and muscle metabolism. BCAA supplementation as therapy, both oral and intravenous, in human health and disease holds great promise. BCAAs have different metabolic routes, with valine going solely to carbohydrates (glucogenic), leucine solely to fats (ketogenic) and isoleucine being both a glucogenic and a ketogenic amino acid. The different metabolism accounts for different requirements for these essential amino acids in humans: 12 mg/kg, 14 mg/kg and 16 mg/kg of valine, leucine and isoleucine respectively. The primary metabolic end products of leucine metabolism are acetyl-CoA and acetoacetate; consequently, it is one of the two exclusively ketogenic amino acids, with lysine being the other. Leucine is the most important ketogenic amino acid in humans. The vast majority of l-leucine metabolism is initially catalyzed by the branched-chain amino acid aminotransferase enzyme, producing alpha-ketoisocaproate (alpha-KIC). alpha-KIC is metabolized by the mitochondrial enzyme branched-chain alpha-ketoacid dehydrogenase, which converts it to isovaleryl-CoA. Isovaleryl-CoA is subsequently metabolized by the enzyme isovaleryl-CoA dehydrogenase and converted to beta-methylcrotonyl-CoA (MC-CoA), which is used in the synthesis of acetyl-CoA and other compounds. During biotin deficiency, HMB can be synthesized from MC-CoA via enoyl-CoA hydratase and an unknown thioesterase enzyme, which convert MC-CoA into HMB-CoA and HMB-CoA into HMB respectively. Leucine has the capacity to directly stimulate myofibrillar muscle protein synthesis (PMID 15051860). This effect of leucine arises results from its role as an activator of the mechanistic target of rapamycin (mTOR) (PMID 23551944) a serine-threonine protein kinase that regulates protein biosynthesis and cell growth. The activation of mTOR by leucine is mediated through Rag GTPases. Leucine, like other BCAAs, is associated with insulin resistance. In particular, higher levels of leucine are observed in the blood of diabetic mice, rats, and humans (PMID 25287287). BCAAs such as leucine have different deficiency symptoms. Valine deficiency is marked by neurological defects in the brain, while isoleucine deficiency is marked by muscle tremors. Persistently low leucine levels can result in decreased appetite, poor feeding, lethargy, poor growth, weight loss, skin rashes, hair loss, and desquamation. Many types of inborn errors of BCAA metabolism exist and these are marked by various abnormalities. The most common form is maple syrup urine disease, marked by a characteristic urinary odor. Other abnormalities are associated with a wide range of symptoms, such as mental retardation, ataxia, hypoglycemia, spinal muscle atrophy, rash, vomiting and excessive muscle movement. Most forms of BCAA metabolism errors are corrected by dietary res... L-leucine is the L-enantiomer of leucine. It has a role as a plant metabolite, an Escherichia coli metabolite, a Saccharomyces cerevisiae metabolite, a human metabolite, an algal metabolite and a mouse metabolite. It is a pyruvate family amino acid, a proteinogenic amino acid, a leucine and a L-alpha-amino acid. It is a conjugate base of a L-leucinium. It is a conjugate acid of a L-leucinate. It is an enantiomer of a D-leucine. It is a tautomer of a L-leucine zwitterion. An essential branched-chain amino acid important for hemoglobin formation. L-Leucine is a metabolite found in or produced by Escherichia coli (strain K12, MG1655). Leucine is one of nine essential amino acids in humans (provided by food), Leucine is important for protein synthesis and many metabolic functions. Leucine contributes to regulation of blood-sugar levels; growth and repair of muscle and bone tissue; growth hormone production; and wound healing. Leucine also prevents breakdown of muscle proteins after trauma or severe stress and may be beneficial for individuals with phenylketonuria. Leucine is available in many foods and deficiency is rare. (NCI04) Leucine (abbreviated as Leu or L)[2] is a branched-chain л±-amino acid with the chemical formulaHO2CCH(NH2)CH2CH(CH3)2. Leucine is classified as a hydrophobic amino acid due to its aliphatic isobutyl side chain. It is encoded by six codons (UUA, UUG, CUU, CUC, CUA, and CUG) and is a major component of the subunits in ferritin, astacin, and other buffer proteins. Leucine is an essential amino acid, meaning that the human body cannot synthesize it, and it therefore must be ingested. It is important for hemoglobin formation. An essential branched-chain amino acid important for hemoglobin formation. See also: Isoleucine; Leucine (component of) ... View More ... Dietary supplement, nutrient [DFC]. (±)-Leucine is found in many foods, some of which are green bell pepper, italian sweet red pepper, green zucchini, and red bell pepper. L-Leucine. CAS Common Chemistry. CAS, a division of the American Chemical Society, n.d. https://commonchemistry.cas.org/detail?cas_rn=61-90-5 (retrieved 2024-07-01) (CAS RN: 61-90-5). Licensed under the Attribution-Noncommercial 4.0 International License (CC BY-NC 4.0). L-Leucine is an essential branched-chain amino acid (BCAA), which activates the mTOR signaling pathway[1]. L-Leucine is an essential branched-chain amino acid (BCAA), which activates the mTOR signaling pathway[1]. L-Leucine is an essential branched-chain amino acid (BCAA), which activates the mTOR signaling pathway[1]. L-Leucine is an essential branched-chain amino acid (BCAA), which activates the mTOR signaling pathway[1].

   

Artemisinic

1-NAPHTHALENEACETIC ACID, 1,2,3,4,4A,5,6,8A-OCTAHYDRO-4,7-DIMETHYL-.ALPHA.-METHYLENE-, (1R-(1.ALPHA.,4.BETA.,4A.BETA.,8A.BETA.))-

C15H22O2 (234.1619712)


(+)-artemisinic acid is a monocarboxylic acid that is prop-2-enoic acid which is substituted at position 2 by a 4,7-dimethyl-1,2,3,4,4a,5,6,8a-octahydronaphthalen-1-yl group (the 1S,4R,4aS,8aR diastereoisomer). It is a sesquiterpenoid precursor of artemisinin, obtained from sweet wormwood, Artemisia annua. It has a role as a metabolite. It is a monocarboxylic acid, a carbobicyclic compound, a sesquiterpenoid and a member of octahydronaphthalenes. It is functionally related to a (+)-artemisinic alcohol. It is a conjugate acid of a (+)-artemisinate. Artemisinic acid is a natural product found in Artemisia apiacea, Artemisia annua, and other organisms with data available. A monocarboxylic acid that is prop-2-enoic acid which is substituted at position 2 by a 4,7-dimethyl-1,2,3,4,4a,5,6,8a-octahydronaphthalen-1-yl group (the 1S,4R,4aS,8aR diastereoisomer). It is a sesquiterpenoid precursor of artemisinin, obtained from sweet wormwood, Artemisia annua. D009676 - Noxae > D016877 - Oxidants > D010545 - Peroxides Artemisinic acid (Qing Hao acid), an amorphane sesquiterpene isolated from Artemisia annua L., possesses a variety of pharmacological activity, such as antimalarial activity, anti-tumor activity, antipyretic effect, antibacterial activity, allelopathy effect and anti-adipogenesis effect[1]. Artemisinic acid (Qing Hao acid), an amorphane sesquiterpene isolated from Artemisia annua L., possesses a variety of pharmacological activity, such as antimalarial activity, anti-tumor activity, antipyretic effect, antibacterial activity, allelopathy effect and anti-adipogenesis effect[1].

   

Ferulic acid

(E)-3-(4-hydroxy-3-methoxyphenyl)prop-2-enoic acid

C10H10O4 (194.057906)


trans-Ferulic acid is a highly abundant phenolic phytochemical which is present in plant cell walls. Ferulic acid is a phenolic acid that can be absorbed by the small intestine and excreted through the urine. It is one of the most abundant phenolic acids in plants, varying from 5 g/kg in wheat bran to 9 g/kg in sugar-beet pulp and 50 g/kg in corn kernel. It occurs primarily in seeds and leaves both in its free form (albeit rarely) and covalently linked to lignin and other biopolymers. It is usually found as ester cross-links with polysaccharides in the cell wall, such as arabinoxylans in grasses, pectin in spinach and sugar beet, and xyloglucans in bamboo. It also can cross-link with proteins. Due to its phenolic nucleus and an extended side chain conjugation (carbohydrates and proteins), it readily forms a resonance-stabilized phenoxy radical which accounts for its potent antioxidant potential. Food supplementation with curcumin and ferulic acid is considered a nutritional approach to reducing oxidative damage and amyloid pathology in Alzheimer disease (PMID:17127365, 1398220, 15453708, 9878519). Ferulic acid can be found in Pseudomonas and Saccharomyces (PMID:8395165). Ferulic acid is a ferulic acid consisting of trans-cinnamic acid bearing methoxy and hydroxy substituents at positions 3 and 4 respectively on the phenyl ring. It has a role as an antioxidant, a MALDI matrix material, a plant metabolite, an anti-inflammatory agent, an apoptosis inhibitor and a cardioprotective agent. It is a conjugate acid of a ferulate. Ferulic acid is a natural product found in Haplophyllum griffithianum, Visnea mocanera, and other organisms with data available. Ferulic acid is a metabolite found in or produced by Saccharomyces cerevisiae. See also: Angelica sinensis root (part of). Widely distributed in plants, first isolated from Ferula foetida (asafoetida). Antioxidant used to inhibit oxidn. of fats, pastry products, etc. Antifungal agent used to prevent fruit spoilage. trans-Ferulic acid is found in many foods, some of which are deerberry, peach, shea tree, and common bean. A ferulic acid consisting of trans-cinnamic acid bearing methoxy and hydroxy substituents at positions 3 and 4 respectively on the phenyl ring. D018373 - Peripheral Nervous System Agents > D018689 - Sensory System Agents D005765 - Gastrointestinal Agents > D002756 - Cholagogues and Choleretics D002317 - Cardiovascular Agents > D000959 - Antihypertensive Agents D019995 - Laboratory Chemicals > D007202 - Indicators and Reagents D002491 - Central Nervous System Agents > D000700 - Analgesics D000975 - Antioxidants > D016166 - Free Radical Scavengers D006401 - Hematologic Agents > D000925 - Anticoagulants D020011 - Protective Agents > D000975 - Antioxidants D000893 - Anti-Inflammatory Agents D018501 - Antirheumatic Agents Acquisition and generation of the data is financially supported in part by CREST/JST. KEIO_ID H074 (E)-Ferulic acid is a isomer of Ferulic acid which is an aromatic compound, abundant in plant cell walls. (E)-Ferulic acid causes the phosphorylation of β-catenin, resulting in proteasomal degradation of β-catenin and increases the expression of pro-apoptotic factor Bax and decreases the expression of pro-survival factor survivin. (E)-Ferulic acid shows a potent ability to remove reactive oxygen species (ROS) and inhibits lipid peroxidation. (E)-Ferulic acid exerts both anti-proliferation and anti-migration effects in the human lung cancer cell line H1299[1]. (E)-Ferulic acid is a isomer of Ferulic acid which is an aromatic compound, abundant in plant cell walls. (E)-Ferulic acid causes the phosphorylation of β-catenin, resulting in proteasomal degradation of β-catenin and increases the expression of pro-apoptotic factor Bax and decreases the expression of pro-survival factor survivin. (E)-Ferulic acid shows a potent ability to remove reactive oxygen species (ROS) and inhibits lipid peroxidation. (E)-Ferulic acid exerts both anti-proliferation and anti-migration effects in the human lung cancer cell line H1299[1]. Ferulic acid is a novel fibroblast growth factor receptor 1 (FGFR1) inhibitor with IC50s of 3.78 and 12.5 μM for FGFR1 and FGFR2, respectively. Ferulic acid is a novel fibroblast growth factor receptor 1 (FGFR1) inhibitor with IC50s of 3.78 and 12.5 μM for FGFR1 and FGFR2, respectively.

   

Hesperetin

(2S)-5,7-Dihydroxy-2-(3-hydroxy-4-methoxyphenyl)-2,3-dihydro-4H-1-benzopyran-4-one (Hesperetin)

C16H14O6 (302.0790344)


Hesperetin, also known as prestwick_908 or YSO2, belongs to the class of organic compounds known as 4-o-methylated flavonoids. These are flavonoids with methoxy groups attached to the C4 atom of the flavonoid backbone. Thus, hesperetin is considered to be a flavonoid lipid molecule. Hesperetin also seems to upregulate the LDL receptor. Hesperetin, in the form of its glycoside , is the predominant flavonoid in lemons and oranges. Hesperetin is a drug which is used for lowering cholesterol and, possibly, otherwise favorably affecting lipids. In vitro research also suggests the possibility that hesperetin might have some anticancer effects and that it might have some anti-aromatase activity. Hesperetin is a very hydrophobic molecule, practically insoluble in water, and relatively neutral. Hesperetin is a bitter tasting compound. Hesperetin is found, on average, in the highest concentration within a few different foods, such as limes, persian limes, and sweet oranges and in a lower concentration in pummelo, welsh onions, and lemons. Hesperetin has also been detected, but not quantified, in several different foods, such as yellow bell peppers, carrots, rapinis, hazelnuts, and beers. Hesperetin is a biomarker for the consumption of citrus fruits. Hesperetin reduces or inhibits the activity of acyl-coenzyme A:cholesterol acyltransferase genes (ACAT1 and ACAT2) and it reduces microsomal triglyceride transfer protein (MTP) activity. Hesperetin is a trihydroxyflavanone having the three hydroxy gropus located at the 3-, 5- and 7-positions and an additional methoxy substituent at the 4-position. It has a role as an antioxidant, an antineoplastic agent and a plant metabolite. It is a monomethoxyflavanone, a trihydroxyflavanone, a member of 3-hydroxyflavanones and a member of 4-methoxyflavanones. It is a conjugate acid of a hesperetin(1-). Hesperetin belongs to the flavanone class of flavonoids. Hesperetin, in the form of its glycoside [hesperidin], is the predominant flavonoid in lemons and oranges. Hesperetin is a natural product found in Brassica oleracea var. sabauda, Dalbergia parviflora, and other organisms with data available. Isolated from Mentha (peppermint) and numerous Citrussubspecies, with lemons, tangerines and oranges being especially good sources. Nutriceutical with anti-cancer props. Glycosides also widely distributed A trihydroxyflavanone having the three hydroxy gropus located at the 3-, 5- and 7-positions and an additional methoxy substituent at the 4-position. Acquisition and generation of the data is financially supported in part by CREST/JST. [Raw Data] CB046_Hesperetin_pos_40eV_CB000021.txt [Raw Data] CB046_Hesperetin_pos_50eV_CB000021.txt [Raw Data] CB046_Hesperetin_pos_30eV_CB000021.txt [Raw Data] CB046_Hesperetin_pos_20eV_CB000021.txt [Raw Data] CB046_Hesperetin_pos_10eV_CB000021.txt [Raw Data] CB046_Hesperetin_neg_20eV_000014.txt [Raw Data] CB046_Hesperetin_neg_10eV_000014.txt [Raw Data] CB046_Hesperetin_neg_40eV_000014.txt [Raw Data] CB046_Hesperetin_neg_50eV_000014.txt [Raw Data] CB046_Hesperetin_neg_30eV_000014.txt Hesperetin is a natural flavanone, and acts as a potent and broad-spectrum inhibitor against human UGT activity. Hesperetin regulates apoptosis. Hesperetin is a natural flavanone, and acts as a potent and broad-spectrum inhibitor against human UGT activity. Hesperetin regulates apoptosis.

   

Syringin

(2R,3S,4S,5R,6S)-2-(hydroxymethyl)-6-(4-((E)-3-hydroxyprop-1-en-1-yl)-2,6-dimethoxyphenoxy)tetrahydro-2H-pyran-3,4,5-triol

C17H24O9 (372.14202539999997)


Syringin is a monosaccharide derivative that is trans-sinapyl alcohol attached to a beta-D-glucopyranosyl residue at position 1 via a glycosidic linkage. It has a role as a hepatoprotective agent and a plant metabolite. It is a beta-D-glucoside, a monosaccharide derivative, a primary alcohol and a dimethoxybenzene. It is functionally related to a trans-sinapyl alcohol. Syringin is a natural product found in Salacia chinensis, Codonopsis lanceolata, and other organisms with data available. See also: Codonopsis pilosula root (part of). A monosaccharide derivative that is trans-sinapyl alcohol attached to a beta-D-glucopyranosyl residue at position 1 via a glycosidic linkage. Syringin is a main bioactive phenolic glycoside in Acanthopanax senticosus, with anti-osteoporosis activity. Syringin prevents cardiac hypertrophy induced by pressure overload through the attenuation of autophagy[1][2]. Syringin is a main bioactive phenolic glycoside in Acanthopanax senticosus, with anti-osteoporosis activity. Syringin prevents cardiac hypertrophy induced by pressure overload through the attenuation of autophagy[1][2].

   

Coniferin

(2R,3S,4S,5R,6S)-2-(Hydroxymethyl)-6-(4-((E)-3-hydroxyprop-1-en-1-yl)-2-methoxyphenoxy)tetrahydro-2H-pyran-3,4,5-triol

C16H22O8 (342.1314612)


Coniferin (CAS: 531-29-3), also known as abietin or coniferoside, belongs to the class of organic compounds known as phenolic glycosides. These are organic compounds containing a phenolic structure attached to a glycosyl moiety. Some examples of phenolic structures include lignans and flavonoids. Among the sugar units found in natural glycosides are D-glucose, L-fructose, and L-rhamnose. Coniferin is an extremely weak basic (essentially neutral) compound (based on its pKa). Coniferin is a monosaccharide derivative consisting of coniferol attached to a beta-D-glucopyranosyl residue at position 1 via a glycosidic linkage. Coniferin is found in asparagus and has been isolated from Scorzonera hispanica (black salsify). Coniferin is a monosaccharide derivative that is coniferol attached to a beta-D-glucopyranosyl residue at position 1 via a glycosidic linkage. It has a role as a plant metabolite. It is a cinnamyl alcohol beta-D-glucoside, an aromatic ether and a monosaccharide derivative. It is functionally related to a coniferol. Coniferin is a natural product found in Salacia chinensis, Astragalus onobrychis, and other organisms with data available. A monosaccharide derivative that is coniferol attached to a beta-D-glucopyranosyl residue at position 1 via a glycosidic linkage. Isolated from Scorzonera hispanica (scorzonera) Coniferin (Laricin) is a glucoside of coniferyl alcohol. Coniferin inhibits fungal growth and melanization[1]. Coniferin (Laricin) is a glucoside of coniferyl alcohol. Coniferin inhibits fungal growth and melanization[1].

   

Pinoresinol

PHENOL, 4,4-(TETRAHYDRO-1H,3H-FURO(3,4-C)FURAN-1,4-DIYL)BIS(2-METHOXY-, (1S-(1.ALPHA.,3A.ALPHA.,4.BETA.,6A.ALPHA.))-

C20H22O6 (358.1416312)


Epipinoresinol is an enantiomer of pinoresinol having (+)-(1R,3aR,4S,6aR)-configuration. It has a role as a plant metabolite and a marine metabolite. Epipinoresinol is a natural product found in Pandanus utilis, Abeliophyllum distichum, and other organisms with data available. An enantiomer of pinoresinol having (+)-(1R,3aR,4S,6aR)-configuration. (+)-pinoresinol is an enantiomer of pinoresinol having (+)-1S,3aR,4S,6aR-configuration. It has a role as a hypoglycemic agent, a plant metabolite and a phytoestrogen. Pinoresinol is a natural product found in Pandanus utilis, Zanthoxylum beecheyanum, and other organisms with data available. See also: Acai fruit pulp (part of). An enantiomer of pinoresinol having (+)-1S,3aR,4S,6aR-configuration. relative retention time with respect to 9-anthracene Carboxylic Acid is 0.907 relative retention time with respect to 9-anthracene Carboxylic Acid is 0.905 relative retention time with respect to 9-anthracene Carboxylic Acid is 0.897 relative retention time with respect to 9-anthracene Carboxylic Acid is 0.895 Pinoresinol is a lignol of plant origin serving for defense in a caterpillar. Pinoresinol drastically sensitizes cancer cells against TNF-related apoptosis-inducing ligand (TRAIL) -induced apoptosis[1][2]. Pinoresinol is a lignol of plant origin serving for defense in a caterpillar. Pinoresinol drastically sensitizes cancer cells against TNF-related apoptosis-inducing ligand (TRAIL) -induced apoptosis[1][2].

   

Costunolide

Cyclodeca[b]furan-2(3H)-one, 3a,4,5,8,9,11a-hexahydro-6,10-dimethyl-3-methylene-, (3aS,6E,10E,11aR)-

C15H20O2 (232.14632200000003)


Costunolide is a germacranolide with anthelminthic, antiparasitic and antiviral activities. It has a role as an anthelminthic drug, an antiinfective agent, an antineoplastic agent, an antiparasitic agent, an antiviral drug and a metabolite. It is a germacranolide and a heterobicyclic compound. (+)-Costunolide is a natural product found in Magnolia garrettii, Critonia morifolia, and other organisms with data available. Constituent of costus root (Saussurea lappa). Costunolide is found in tarragon, sweet bay, and herbs and spices. Costunolide is found in herbs and spices. Costunolide is a constituent of costus root (Saussurea lappa) D000890 - Anti-Infective Agents > D000977 - Antiparasitic Agents > D000871 - Anthelmintics D000890 - Anti-Infective Agents > D000998 - Antiviral Agents INTERNAL_ID 2266; CONFIDENCE Reference Standard (Level 1) CONFIDENCE Reference Standard (Level 1); INTERNAL_ID 2266 D000970 - Antineoplastic Agents D004791 - Enzyme Inhibitors Costunolide ((+)-Costunolide) is a naturally occurring sesquiterpene lactone, with antioxidative, anti-inflammatory, antiallergic, bone remodeling, neuroprotective, hair growth promoting, anticancer, and antidiabetic properties. Costunolide can induce cell cycle arrest and apoptosis on breast cancer cells[1][2][3]. Costunolide ((+)-Costunolide) is a naturally occurring sesquiterpene lactone, with antioxidative, anti-inflammatory, antiallergic, bone remodeling, neuroprotective, hair growth promoting, anticancer, and antidiabetic properties. Costunolide can induce cell cycle arrest and apoptosis on breast cancer cells[1][2][3].

   

Friedelin

3(2H)-PICENONE, EICOSAHYDRO-4,4A,6B,8A,11,11,12B,14A-OCTAMETHYL-, (4R-(4.ALPHA.,4A.ALPHA.,6A.BETA.,6B.ALPHA.,8A.ALPHA.,12A.ALPHA.,12B.BETA.,14A.ALPHA.,14B.BETA.))-

C30H50O (426.386145)


Friedelin is a pentacyclic triterpenoid that is perhydropicene which is substituted by an oxo group at position 3 and by methyl groups at the 4, 4a, 6b, 8a, 11, 11, 12b, and 14a-positions (the 4R,4aS,6aS,6bR,8aR,12aR,12bS,14aS,14bS-enantiomer). It is the major triterpenoid constituent of cork. It has a role as an anti-inflammatory drug, a non-narcotic analgesic, an antipyretic and a plant metabolite. It is a pentacyclic triterpenoid and a cyclic terpene ketone. Friedelin is a natural product found in Diospyros eriantha, Salacia chinensis, and other organisms with data available. A pentacyclic triterpenoid that is perhydropicene which is substituted by an oxo group at position 3 and by methyl groups at the 4, 4a, 6b, 8a, 11, 11, 12b, and 14a-positions (the 4R,4aS,6aS,6bR,8aR,12aR,12bS,14aS,14bS-enantiomer). It is the major triterpenoid constituent of cork. Friedelin is a member of the class of compounds known as triterpenoids. Triterpenoids are terpene molecules containing six isoprene units. Friedelin is practically insoluble (in water) and an extremely weak basic (essentially neutral) compound (based on its pKa). Friedelin can be found in a number of food items such as pomegranate, sugar apple, apple, and mammee apple, which makes friedelin a potential biomarker for the consumption of these food products. Friedelin is a triterpenoid chemical compound found in Azima tetracantha, Orostachys japonica, and Quercus stenophylla. Friedelin is also found in the roots of the Cannabis plant .

   

Oleanolic acid

(4aS,5S,6aS,6bR,8R,8aR,10S,12aR,12bR,14bS)-10-Hydroxy-2,2,6a,6b,9,9,12a-heptamethyl-1,3,4,5,6,6a,6b,7,8,8a,9,10,11,12,12a,12b,13,14b-octadecahydro-2H-picene-4a-carboxylic acid

C30H48O3 (456.36032579999994)


Oleanolic acid is a pentacyclic triterpene, found in the non-glyceride fraction of olive pomace oil (Olive pomace oil, also known as "orujo" olive oil, is a blend of refined-pomace oil and virgin olive oil, fit for human consumption). Pentacyclic triterpenes are natural compounds which are widely distributed in plants. These natural products have been demonstrated to possess anti-inflammatory properties. Triterpenoids have been reported to possess antioxidant properties, since they prevent lipid peroxidation and suppress superoxide anion generation. The triterpenes have a history of medicinal use in many Asian countries. Oleanolic acid exhibits both pro- and anti-inflammatory properties depending on chemical structure and dose and may be useful in modulating the immune response; further studies are required to confirm the immunomodulatory behaviour of this triterpenoid, and characterise the mechanisms underlying the biphasic nature of some aspects of the inflammatory response. Oleanolic acid is a ubiquitous triterpenoid in plant kingdom, medicinal herbs, and is an integral part of the human diet. During the last decade over 700 research articles have been published on triterpenoids research, reflecting tremendous interest and progress in our understanding of these compounds. This included the isolation and purification of these tritepernoids from various plants and herbs, the chemical modifications to make more effective and water soluble derivatives, the pharmacological research on their beneficial effects, the toxicity studies, and the clinical use of these triterpenoids in various diseases including anticancer chemotherapies. (PMID:17292619, 15522132, 15994040). Oleanolic acid is a pentacyclic triterpenoid that is olean-12-en-28-oic acid substituted by a beta-hydroxy group at position 3. It has a role as a plant metabolite. It is a pentacyclic triterpenoid and a hydroxy monocarboxylic acid. It is a conjugate acid of an oleanolate. It derives from a hydride of an oleanane. Oleanolic acid is a natural product found in Ophiopogon japonicus, Freziera, and other organisms with data available. A pentacyclic triterpene that occurs widely in many PLANTS as the free acid or the aglycone for many SAPONINS. It is biosynthesized from lupane. It can rearrange to the isomer, ursolic acid, or be oxidized to taraxasterol and amyrin. See also: Holy basil leaf (part of); Jujube fruit (part of); Paeonia lactiflora root (part of) ... View More ... Occurs as glycosides in cloves (Syzygium aromaticum), sugar beet (Beta vulgaris), olive leaves, etc. Very widely distributed aglycone A pentacyclic triterpenoid that is olean-12-en-28-oic acid substituted by a beta-hydroxy group at position 3. [Raw Data] CBA90_Oleanolic-acid_neg_50eV.txt [Raw Data] CBA90_Oleanolic-acid_neg_20eV.txt [Raw Data] CBA90_Oleanolic-acid_neg_10eV.txt [Raw Data] CBA90_Oleanolic-acid_neg_30eV.txt [Raw Data] CBA90_Oleanolic-acid_neg_40eV.txt Oleanolic acid (Caryophyllin) is a natural compound from plants with anti-tumor activities. Oleanolic acid (Caryophyllin) is a natural compound from plants with anti-tumor activities.

   

Santonin

InChI=1/C15H18O3/c1-8-10-4-6-15(3)7-5-11(16)9(2)12(15)13(10)18-14(8)17/h5,7-8,10,13H,4,6H2,1-3H3/t8-,10-,13-,15-/m0/s

C15H18O3 (246.1255878)


Alpha-santonin is a santonin that is 3a,5,5a,9b-tetrahydronaphtho[1,2-b]furan-2,8(3H,4H)-dione substituted by methyl groups at positions 3, 5a and 9. It has a role as a plant metabolite. It is a botanical anti-fungal agent and a santonin. Santonin is a natural product found in Artemisia spicigera, Artemisia diffusa, and other organisms with data available. Anthelmintic isolated from the dried unexpanded flower heads of Artemisia maritima and other species of Artemisia found principally in Russian and Chinese Turkestan and the Southern Ural region. (From Merck, 11th ed.) See also: ... View More ... A santonin that is 3a,5,5a,9b-tetrahydronaphtho[1,2-b]furan-2,8(3H,4H)-dione substituted by methyl groups at positions 3, 5a and 9. D000890 - Anti-Infective Agents > D000977 - Antiparasitic Agents > D000871 - Anthelmintics C254 - Anti-Infective Agent > C276 - Antiparasitic Agent > C250 - Antihelminthic Agent ADP-ribose 1"-2" cyclic phosphate is a cyclic phosphate nucleotide that arises from tRNA processing. In eukaryotic cells, pre-tRNAs spliced by a pathway that produces a 3,5-phosphodiester, 2-phosphomonoester linkage contain a 2-phosphate group adjacent to the tRNA anticodon. This 2-phosphate is transferred to NAD to give adenosine diphosphate (ADP)-ribose 1", 2"-cyclic phosphate (Appr>p), which is subsequently metabolized to ADP-ribose 1-phosphate (Appr-1p). The latter reaction is catalyzed by a cyclic phosphodiesterase (CPDase). (PMID: 9148938). One molecule of ADP-ribose 1",2"-cyclic phosphate (Appr>p) is formed during each of the approximately 500 000 tRNA splicing events. [HMDB] Constituent of Physalis peruviana (Cape gooseberry). Withaperuvin F is found in fruits. Alkaloid found on the leaf surfaces of Brassica oleracea cv. botrytis (cauliflower) [DFC]. Cabbage identification factor 1 is found in brassicas. CONFIDENCE Reference Standard (Level 1); INTERNAL_ID 2267 INTERNAL_ID 2267; CONFIDENCE Reference Standard (Level 1) relative retention time with respect to 9-anthracene Carboxylic Acid is 0.918 relative retention time with respect to 9-anthracene Carboxylic Acid is 0.917 relative retention time with respect to 9-anthracene Carboxylic Acid is 0.915 [Raw Data] CB081_Santonin_pos_30eV_CB000033.txt [Raw Data] CB081_Santonin_pos_10eV_CB000033.txt [Raw Data] CB081_Santonin_pos_40eV_CB000033.txt [Raw Data] CB081_Santonin_pos_20eV_CB000033.txt [Raw Data] CB081_Santonin_pos_50eV_CB000033.txt Santonin is an active principle of the plant Artemisia cina, which is formely used to treat worms[1]. Santonin is an active principle of the plant Artemisia cina, which is formely used to treat worms[1].

   

Polylimonene

1-Methyl-4-(1-methylethenyl)-or 1-methyl-4-isopropenyl-cyclohex-1-ene

C10H16 (136.1251936)


Dipentene appears as a colorless liquid with an odor of lemon. Flash point 113 °F. Density about 7.2 lb /gal and insoluble in water. Hence floats on water. Vapors heavier than air. Used as a solvent for rosin, waxes, rubber; as a dispersing agent for oils, resins, paints, lacquers, varnishes, and in floor waxes and furniture polishes. Limonene is a monoterpene that is cyclohex-1-ene substituted by a methyl group at position 1 and a prop-1-en-2-yl group at position 4 respectively. It has a role as a human metabolite. It is a cycloalkene and a p-menthadiene. Limonene is a natural product found in Teucrium montanum, Xylopia aromatica, and other organisms with data available. Limonene, (+/-)- is a racemic mixture of limonene, a natural cyclic monoterpene and major component of the oil extracted from citrus rind with chemo-preventive and antitumor activities. The metabolites of DL-limonene, perillic acid, dihydroperillic acid, uroterpenol and limonene 1,2-diol are suggested to inhibit tumor growth through inhibition of p21-dependent signaling, induce apoptosis via the induction of the transforming growth factor beta-signaling pathway, inhibit post-translational modification of signal transduction proteins, result in G1 cell cycle arrest as well as cause differential expression of cell cycle- and apoptosis-related genes. Limonene is a metabolite found in or produced by Saccharomyces cerevisiae. A naturally-occurring class of MONOTERPENES which occur as a clear colorless liquid at room temperature. Limonene is the major component in the oil of oranges which has many uses, including as flavor and fragrance. It is recognized as safe in food by the Food and Drug Administration (FDA). See also: Cannabis sativa subsp. indica top (part of); Larrea tridentata whole (part of). Constituent of many essential oils. (±)-Limonene is found in many foods, some of which are common oregano, nutmeg, herbs and spices, and summer savory. Dipentene is found in carrot. Dipentene is a constituent of many essential oils

   

(-)-beta-Pinene

Bicyclo(3.1.1)heptane, 6,6-dimethyl-2-methylene-, (1S,5S)-

C10H16 (136.1251936)


(-)-beta-pinene is the (1S,5S)-enantiomer of beta-pinene. It is an enantiomer of a (+)-beta-pinene. (-)-beta-Pinene is a natural product found in Curcuma amada, Molopospermum peloponnesiacum, and other organisms with data available. Flavouring ingredient. (-)-beta-Pinene is found in many foods, some of which are almond, hyssop, sweet bay, and common sage. (-)-beta-Pinene is found in almond. (-)-beta-Pinene is a flavouring ingredient. The (1S,5S)-enantiomer of beta-pinene. β-Pinene ((-)-β-Pinene), a major component of turpentine, inhibit infectious bronchitis virus (IBV) with an IC50 of 1.32 mM. β-Pinene presents antimicrobial activity[1][2]. β-Pinene ((-)-β-Pinene), a major component of turpentine, inhibit infectious bronchitis virus (IBV) with an IC50 of 1.32 mM. β-Pinene presents antimicrobial activity[1][2].

   

3,7-Dimethylquercetin

4H-1-Benzopyran-4-one, 2-(3,4-dihydroxyphenyl)-5-hydroxy-3,7-dimethoxy-

C17H14O7 (330.0739494)


3,4,5-trihydroxy-3,7-dimethoxyflavone is a dimethoxyflavone that the 3,7-di-O-methyl derivative of quercetin. It has a role as an EC 1.3.1.22 [3-oxo-5alpha-steroid 4-dehydrogenase (NADP(+))] inhibitor and a metabolite. It is a trihydroxyflavone and a dimethoxyflavone. It is functionally related to a quercetin. It is a conjugate acid of a 3,4,5-trihydroxy-3,7-dimethoxyflavone(1-). 3,7-Di-O-methylquercetin is a natural product found in Wollastonia biflora, Psiadia viscosa, and other organisms with data available. 3,7-Dimethylquercetin is found in beer. 3,7-Dimethylquercetin is isolated from various plants including many Asteraceae [CCD Isolated from various plants including many Asteraceae [CCD]. 3,7-Dimethylquercetin is found in beer and grape wine. A dimethoxyflavone that the 3,7-di-O-methyl derivative of quercetin.

   

Glutinone

(6aS,6aS,6bR,8aR,12aR,14aR,14bS)-4,4,6a,6b,8a,11,11,14a-octamethyl-2,6,6a,7,8,9,10,12,12a,13,14,14b-dodecahydro-1H-picen-3-one

C30H48O (424.37049579999996)


Glutinone is a member of cyclohexanones. Glutinone is a natural product found in Uvaria concava, Dischidia formosana, and other organisms with data available.

   

Valencene

NAPHTHALENE, 1,2,3,5,6,7,8,8A-OCTAHYDRO-1,8A-DIMETHYL-7-(1-METHYLETHENYL)-, (1R-(1.ALPHA.,7.BETA.,8A.ALPHA.))-

C15H24 (204.18779039999998)


(+)-valencene is a carbobicyclic compound and sesquiterpene that is 1,2,3,4,4a,5,6,7-octahydronaphthalene which is substituted a prop-1-en-2-yl group at position 3 and by methyl groups at positions 4a and 5 (the 3R,4aS,5R- diastereoisomer). It is a sesquiterpene, a carbobicyclic compound and a polycyclic olefin. Valencene is a natural product found in Xylopia sericea, Helichrysum odoratissimum, and other organisms with data available. Valencene is found in citrus. Valencene is a constituent of orange oil Valencene is a sesquiterpene isolated from Cyperus rotundus, possesses antiallergic, antimelanogenesis, anti-infammatory, and antioxidant activitivies. Valencene inhibits the exaggerated expression of Th2 chemokines and proinflammatory chemokines through blockade of the NF-κB pathway. Valencene is used to flavor foods and drinks[1][2][3].

   

alpha-Humulene

trans,trans,trans-2,6,6,9-Tetramethyl-1,4,8-cycloundecatriene

C15H24 (204.18779039999998)


alpha-Humulene, also known as alpha-caryophyllene, belongs to the class of organic compounds known as sesquiterpenoids. These are terpenes with three consecutive isoprene units. Thus, alpha-humulene is considered to be an isoprenoid lipid molecule. alpha-Humulene is found in allspice. alpha-Humulene is a constituent of many essential oils including hops (Humulus lupulus) and cloves (Syzygium aromaticum). (1E,4E,8E)-alpha-humulene is the (1E,4E,8E)-isomer of alpha-humulene. Humulene is a natural product found in Nepeta nepetella, Teucrium montanum, and other organisms with data available. See also: Caryophyllene (related). α-Humulene is a main constituent of Tanacetum vulgare L. (Asteraceae) essential oil with anti-inflammation (IC50=15±2 μg/mL). α-Humulene inhibits COX-2 and iNOS expression[1]. α-Humulene is a main constituent of Tanacetum vulgare L. (Asteraceae) essential oil with anti-inflammation (IC50=15±2 μg/mL). α-Humulene inhibits COX-2 and iNOS expression[1].

   

Safranal

InChI=1/C10H14O/c1-8-5-4-6-10(2,3)9(8)7-11/h4-5,7H,6H2,1-3H3

C10H14O (150.1044594)


Safranal is found in fig. Safranal is a constituent of saffron (Crocus sativa). Safranal is a flavouring ingredient It is believed that safranal is a degradation product of the carotenoid zeaxanthin via the intermediacy of picrocrocin. Safranal is an effective anticonvulsant shown to act as an agonist at GABAA receptors. Safranal also exhibits high antioxidant and free radical scavenging activity, along with cytotoxicity towards cancer cells in vitro. It has also been shown to have antidepressant properties. Safranal is an organic compound isolated from saffron, the spice consisting of the stigmas of crocus flowers (Crocus sativus). It is the constituent primarily responsible for the aroma of saffron Safranal is a monoterpenoid formally derived from beta-cyclocitral by dehydrogenation. It is functionally related to a beta-cyclocitral. Safranal is a natural product found in Aspalathus linearis, Cistus creticus, and other organisms with data available. Constituent of saffron (Crocus sativa). Flavouring ingredient Safranal is an orally active main component of Saffron (Crocus sativus) and is responsible for the unique aroma of this spice. Safranal has neuroprotective and anti-inflammatory effects and has the potential for Parkinson’s disease research[1]. Safranal is an orally active main component of Saffron (Crocus sativus) and is responsible for the unique aroma of this spice. Safranal has neuroprotective and anti-inflammatory effects and has the potential for Parkinson’s disease research[1].

   

Ethyl cinnamate

Cinnamic acid, ethyl ester (6CI,7CI,8CI); 3-Phenyl-2-propenoic acid ethyl ester

C11H12O2 (176.0837252)


Occurs in storaxand is also present in many fruits, e.g. cherry, American cranberry, pineapple, blackberry and passion fruit. Ethyl cinnamate is found in many foods, some of which are corn, tarragon, tamarind, and ceylon cinnamon. Ethyl cinnamate is an alkyl cinnamate and an ethyl ester. Ethyl cinnamate is a natural product found in Hedychium spicatum, Cinnamomum verum, and other organisms with data available. Ethyl cinnamate is found in ceylan cinnamon. Ethyl cinnamate occurs in storax. Also present in many fruits, e.g. cherry, American cranberry, pineapple, blackberry and passion fruit. Ethyl cinnamate is a fragrance ingredient used in many fragrance compounds. Ethyl cinnamate is a food flavor and additive for cosmetic products. Ethyl cinnamate is also an excellent clearing reagent for mammalian tissues[1][2]. Ethyl cinnamate is a fragrance ingredient used in many fragrance compounds. Ethyl cinnamate is a food flavor and additive for cosmetic products. Ethyl cinnamate is also an excellent clearing reagent for mammalian tissues[1][2].

   

(+)-alpha-Pinene

(R)-(+)--Pinene;(+)--Pinene; (1R)-(+)--Pinene; (1R)--Pinene; (1R,5R)-(+)--Pinene

C10H16 (136.1251936)


alpha-Pinene (CAS: 80-56-8) is an organic compound of the terpene class and is one of two isomers of pinene. It is found in the oils of many species of many coniferous trees, notably the pine. It is also found in the essential oil of rosemary (Rosmarinus officinalis). Both enantiomers are known in nature. 1S,5S- or (-)-alpha-pinene is more common in European pines, whereas the 1R,5R- or (+)-alpha-isomer is more common in North America. The racemic mixture is present in some oils such as eucalyptus oil (Wikipedia). alpha-Pinene is an organic compound of the terpene class, one of two isomers of pinene. It is found in the oils of many species of many coniferous trees, notably the pine. It is also found in the essential oil of rosemary (Rosmarinus officinalis). Both enantiomers are known in nature; 1S,5S- or (-)-alpha-pinene is more common in European pines, whereas the 1R,5R- or (+)-alpha-isomer is more common in North America. The racemic mixture is present in some oils such as eucalyptus oil. (+)-alpha-pinene is the (+)-enantiomer of alpha-pinene. It has a role as a plant metabolite and a human metabolite. It is an enantiomer of a (-)-alpha-pinene. (+)-alpha-Pinene is a natural product found in Juniperus drupacea, Eucalyptus deglupta, and other organisms with data available. The (+)-enantiomer of alpha-pinene. (1R)-α-Pinene is a volatile monoterpene with antimicrobial activities. (1R)-α-Pinene reduces Bacillus cereus population growth, and exhibits repellent effects[1][2]. (1R)-α-Pinene is a volatile monoterpene with antimicrobial activities. (1R)-α-Pinene reduces Bacillus cereus population growth, and exhibits repellent effects[1][2].

   

Stearic acid

1-Heptadecanecarboxylic acid

C18H36O2 (284.2715156)


Stearic acid, also known as stearate or N-octadecanoic acid, is a member of the class of compounds known as long-chain fatty acids. Long-chain fatty acids are fatty acids with an aliphatic tail that contains between 13 and 21 carbon atoms. Thus, stearic acid is considered to be a fatty acid lipid molecule. Stearic acid is practically insoluble (in water) and a weakly acidic compound (based on its pKa). Stearic acid can be synthesized from octadecane. Stearic acid is also a parent compound for other transformation products, including but not limited to, 3-oxooctadecanoic acid, (9S,10S)-10-hydroxy-9-(phosphonooxy)octadecanoic acid, and 16-methyloctadecanoic acid. Stearic acid can be found in a number of food items such as green bell pepper, common oregano, ucuhuba, and babassu palm, which makes stearic acid a potential biomarker for the consumption of these food products. Stearic acid can be found primarily in most biofluids, including urine, feces, cerebrospinal fluid (CSF), and sweat, as well as throughout most human tissues. Stearic acid exists in all living species, ranging from bacteria to humans. In humans, stearic acid is involved in the plasmalogen synthesis. Stearic acid is also involved in mitochondrial beta-oxidation of long chain saturated fatty acids, which is a metabolic disorder. Moreover, stearic acid is found to be associated with schizophrenia. Stearic acid is a non-carcinogenic (not listed by IARC) potentially toxic compound. Stearic acid ( STEER-ik, stee-ARR-ik) is a saturated fatty acid with an 18-carbon chain and has the IUPAC name octadecanoic acid. It is a waxy solid and its chemical formula is C17H35CO2H. Its name comes from the Greek word στέαρ "stéar", which means tallow. The salts and esters of stearic acid are called stearates. As its ester, stearic acid is one of the most common saturated fatty acids found in nature following palmitic acid. The triglyceride derived from three molecules of stearic acid is called stearin . Stearic acid, also known as octadecanoic acid or C18:0, belongs to the class of organic compounds known as long-chain fatty acids. These are fatty acids with an aliphatic tail that contains between 13 and 21 carbon atoms. Stearic acid (its ester is called stearate) is a saturated fatty acid that has 18 carbons and is therefore a very hydrophobic molecule that is practically insoluble in water. It exists as a waxy solid. In terms of its biosynthesis, stearic acid is produced from carbohydrates via the fatty acid synthesis machinery wherein acetyl-CoA contributes two-carbon building blocks, up to the 16-carbon palmitate, via the enzyme complex fatty acid synthase (FA synthase), at which point a fatty acid elongase is needed to further lengthen it. After synthesis, there are a variety of reactions it may undergo, including desaturation to oleate via stearoyl-CoA desaturase (PMID: 16477801). Stearic acid is found in all living organisms ranging from bacteria to plants to animals. It is one of the useful types of saturated fatty acids that comes from many animal and vegetable fats and oils. For example, it is a component of cocoa butter and shea butter. It is used as a food additive, in cleaning and personal care products, and in lubricants. Its name comes from the Greek word stear, which means ‚Äòtallow‚Äô or ‚Äòhard fat‚Äô. Stearic acid is a long chain dietary saturated fatty acid which exists in many animal and vegetable fats and oils. Stearic acid is a long chain dietary saturated fatty acid which exists in many animal and vegetable fats and oils.

   

Caprylic acid

octanoic acid

C8H16O2 (144.1150236)


Caprylic acid is the common name for the eight-carbon straight-chain fatty acid known by the systematic name octanoic acid. It is found naturally in coconuts and breast milk. It is an oily liquid with a slightly unpleasant rancid taste that is minimally soluble in water. Caprylic acid is used commercially in the production of esters used in perfumery and also in the manufacture of dyes (Wikipedia). Caprylic acid can be found in numerous foods such as Prunus (Cherry, Plum), pineapple sages, black raspberries, and shallots. Caprylic acid is found to be associated with medium-chain acyl-CoA dehydrogenase deficiency, which is an inborn error of metabolism. Widespread in plant oils, free and as glyceridesand is also present in apple, banana, orange juice and peel, pineapple, cognac, calamus, blue cheeses, cheddar cheese, Swiss cheese, feta cheese and other cheeses. Flavouring agent, defoamer, lubricant, binder and antimicrobial preservative in cheese wraps KEIO_ID C037 Octanoic acid (Caprylic acid) is an oily liquid with a slightly unpleasant rancid taste and used commercially in the production of esters used in perfumery and also in the manufacture of dyes. Octanoic acid (Caprylic acid) is an oily liquid with a slightly unpleasant rancid taste and used commercially in the production of esters used in perfumery and also in the manufacture of dyes.

   

Caprate (10:0)

decanoic acid

C10H20O2 (172.14632200000003)


Capric acid, also known as decanoic acid is a C10 saturated fatty acid. It is a member of the series of fatty acids found in oils and animal fats. The names of caproic, caprylic, and capric acids are all derived from the word caper (Latin for goat). These fatty acids are light yellowish transparent oily liquids with a sweaty, unpleasant aroma that is reminiscent of goats. Capric acid is used in the manufacture of esters for artificial fruit flavors and perfumes. It is also used as an intermediate in chemical syntheses. Capric acid is used in organic synthesis and industrially in the manufacture of perfumes, lubricants, greases, rubber, dyes, plastics, food additives and pharmaceuticals. Capric acid occurs naturally in coconut oil (about 10\\\\\\%) and palm kernel oil (about 4\\\\\\%), otherwise it is uncommon in typical seed oils. It is found in the milk of various mammals and to a lesser extent in other animal fats. Capric acid, caproic acid (a C6:0 fatty acid) and caprylic acid (a C8:0 fatty acid) account for about 15\\\\\\% of the fatty acids in goat milk fat (PMID 16747831). Capric acid may be responsible for the mitochondrial proliferation associated with the ketogenic diet, which may occur via PPARgamma receptor agonism and the targeting of genes involved in mitochondrial biogenesis (PMIDL 24383952). Widespread in plant oils and as glycerides in seed oilsand is also present in apple, apricot, banana, morello cherry, citrus fruits, cheese, butter, white wine, Japanese whiskey, peated malt, wort and scallops. It is used as a defoamer, lubricant and citrus fruit coating. Salts (Na, K, Mg, Ca, Al) used as binders, emulsifiers and anticaking agents in food manuf. Decanoic acid is found in many foods, some of which are radish (variety), meatball, phyllo dough, and american shad. Decanoic acid. CAS Common Chemistry. CAS, a division of the American Chemical Society, n.d. https://commonchemistry.cas.org/detail?cas_rn=334-48-5 (retrieved 2024-06-29) (CAS RN: 334-48-5). Licensed under the Attribution-Noncommercial 4.0 International License (CC BY-NC 4.0). Decanoic acid, a component of medium chain triclycerides, is a brain-penetrant and non-competitive inhibitor of AMPA receptor. Decanoic acid has antiseizure effects[1][2][3]. Decanoic acid, a component of medium chain triclycerides, is a brain-penetrant and non-competitive inhibitor of AMPA receptor. Decanoic acid has antiseizure effects[1][2][3]. Decanoic acid, a component of medium chain triclycerides, is a brain-penetrant and non-competitive inhibitor of AMPA receptor. Decanoic acid has antiseizure effects[1][2][3].

   

(+)-Camphor

(+)-Camphor;(+)-bornan-2-one;(+)-camphor;(1R)-(+)-camphor;(R)-(+)-camphor;(R)-camphor

C10H16O (152.12010859999998)


Camphor, also known as (+)-camphor or (+)-bornan-2-one, is a member of the class of compounds known as bicyclic monoterpenoids. Bicyclic monoterpenoids are monoterpenoids containing exactly 2 rings, which are fused to each other. Camphor is practically insoluble (in water) and an extremely weak basic (essentially neutral) compound (based on its pKa). Within the cell, camphor is primarily located in the membrane (predicted from logP). Camphor is a waxy, flammable, white or transparent solid with a strong aroma. It is a terpenoid with the chemical formula C10H16O. It is found in many plants, such as in the wood of the camphor laurel (Cinnamomum camphora), a large evergreen tree found in Asia (particularly in Sumatra and Borneo islands, Indonesia) and also of the unrelated Kapur tree, a tall timber tree from the same region. It also occurs in some other related trees in the laurel family, notably Ocotea usambarensis and in the oil in rosemary leaves (Rosmarinus officinalis). The mint family contains 10 to 20\\\\\\\\% camphor, while camphorweed (Heterotheca) only contains some 5\\\\\\\\%. Camphor can also be synthetically produced from oil of turpentine. It is used for its scent, as an ingredient in cooking (mainly in India), as an embalming fluid, for medicinal purposes, and in religious ceremonies. A major source of camphor in Asia is camphor basil (the parent of African blue basil) (Wikipedia). (R)-camphor is the (R)- enantiomer of camphor. It is an enantiomer of a (S)-camphor. Camphor is a bicyclic monoterpene ketone found widely in plants, especially Cinnamomum camphora. It is used topically as a skin antipruritic and as an anti-infective agent. When ingested, camphor has a rapid onset of toxic effects, and camphorated oil is the product most often responsible for its toxicity. The FDA ruled that camphorated oil could not be marketed in the United States and that no product could contain a concentration higher than 11\\\\\\\\%. It appears in the list of drug products withdrawn or removed from the market for safety or effectiveness. However, camphor can be found in several nonprescription medications at lower concentrations. D-Camphor is a natural product found in Chromolaena odorata, Curcuma amada, and other organisms with data available. See also: Coriander Oil (part of). C254 - Anti-Infective Agent > C28394 - Topical Anti-Infective Agent C - Cardiovascular system > C01 - Cardiac therapy The (R)- enantiomer of camphor. (+)-Camphor is a food additive used medicinally as a preservative. (+)-Camphor is a food additive used medicinally as a preservative. (+)-Camphor is a food additive used medicinally as a preservative. (+)-Camphor is a food additive used medicinally as a preservative. Camphor ((±)-Camphor) is a topical anti-infective and anti-pruritic and internally as a stimulant and carminative. However, Camphor is poisonous when ingested. Antiviral, antitussive, and anticancer activities[1]. Camphor is a TRPV3 agonist[2]. Camphor ((±)-Camphor) is a topical anti-infective and anti-pruritic and internally as a stimulant and carminative. However, Camphor is poisonous when ingested. Antiviral, antitussive, and anticancer activities[1]. Camphor is a TRPV3 agonist[2].

   

Dodecanoic acid

dodecanoic acid

C12H24O2 (200.1776204)


Dodecanoic acid, also known as dodecanoate or lauric acid, belongs to the class of organic compounds known as medium-chain fatty acids. These are fatty acids with an aliphatic tail that contains between 4 and 12 carbon atoms. Dodecanoic acid is a very hydrophobic molecule, practically insoluble (in water), and relatively neutral. Dodecanoic acid is the main fatty acid in coconut oil and in palm kernel oil, and is believed to have antimicrobial properties. It is a white, powdery solid with a faint odour of bay oil. Dodecanoic acid, although slightly irritating to mucous membranes, has a very low toxicity and so is used in many soaps and shampoos. Defoamer, lubricant. It is used in fruit coatings. Occurs as glyceride in coconut oil and palm kernel oil. Simple esters are flavour ingredients Lauric acid. CAS Common Chemistry. CAS, a division of the American Chemical Society, n.d. https://commonchemistry.cas.org/detail?cas_rn=143-07-7 (retrieved 2024-07-01) (CAS RN: 143-07-7). Licensed under the Attribution-Noncommercial 4.0 International License (CC BY-NC 4.0). Lauric acid is a middle chain-free fatty acid with strong bactericidal properties. The EC50s for P. acnes, S.aureus, S. epidermidis, are 2, 6, 4 μg/mL, respectively. Lauric acid is a middle chain-free fatty acid with strong bactericidal properties. The EC50s for P. acnes, S.aureus, S. epidermidis, are 2, 6, 4 μg/mL, respectively.

   

Phenol

Hydroxybenzene

C6H6O (94.0418626)


D - Dermatologicals > D08 - Antiseptics and disinfectants > D08A - Antiseptics and disinfectants > D08AE - Phenol and derivatives C - Cardiovascular system > C05 - Vasoprotectives > C05B - Antivaricose therapy > C05BB - Sclerosing agents for local injection An organic hydroxy compound that consists of benzene bearing a single hydroxy substituent. The parent of the class of phenols. R - Respiratory system > R02 - Throat preparations > R02A - Throat preparations > R02AA - Antiseptics D019999 - Pharmaceutical Solutions > D012597 - Sclerosing Solutions N - Nervous system > N01 - Anesthetics > N01B - Anesthetics, local D000890 - Anti-Infective Agents D002317 - Cardiovascular Agents D004202 - Disinfectants CONFIDENCE standard compound; INTERNAL_ID 225

   

Honokiol

2-[4-hydroxy-3-(prop-2-en-1-yl)phenyl]-4-(prop-2-en-1-yl)phenol

C18H18O2 (266.1306728)


D002492 - Central Nervous System Depressants > D014149 - Tranquilizing Agents > D014151 - Anti-Anxiety Agents D002491 - Central Nervous System Agents > D011619 - Psychotropic Drugs > D014149 - Tranquilizing Agents D002491 - Central Nervous System Agents > D002492 - Central Nervous System Depressants D002317 - Cardiovascular Agents > D000889 - Anti-Arrhythmia Agents D005765 - Gastrointestinal Agents D000890 - Anti-Infective Agents D000970 - Antineoplastic Agents D018926 - Anti-Allergic Agents D004791 - Enzyme Inhibitors Honokiol is a bioactive, biphenolic phytochemical that possesses potent antioxidative, anti-inflammatory, antiangiogenic, and anticancer activities by targeting a variety of signaling molecules. It inhibits the activation of Akt. Honokiol can readily cross the blood brain barrier[1][2][3][4]. Honokiol is a bioactive, biphenolic phytochemical that possesses potent antioxidative, anti-inflammatory, antiangiogenic, and anticancer activities by targeting a variety of signaling molecules. It inhibits the activation of Akt. Honokiol can readily cross the blood brain barrier[1][2][3][4]. Honokiol is a bioactive, biphenolic phytochemical that possesses potent antioxidative, anti-inflammatory, antiangiogenic, and anticancer activities by targeting a variety of signaling molecules. It inhibits the activation of Akt. Honokiol can readily cross the blood brain barrier[1][2][3][4].

   

13-OxoODE

(9Z,11E)-13-Oxooctadeca-9,11-dienoic acid

C18H30O3 (294.21948299999997)


13-oxoODE is produced from 13-HODE by a NAD+-dependent dehydrogenase present in rat colonic mucosa. 13-OxoODE has been shown to stimulate cell proliferation when instilled intrarectally in rats. 13-OxoODE has also been detected in preparations of rabbit reticulocyte plasma and mitochondrial membranes, mostly esterified to phospholipids. Production of 13-oxoODE is putatively linked to the maturation of reticulocytes to erythrocytes through the activity of 15-LO. [HMDB] 13-oxoODE is produced from 13-HODE by a NAD+-dependent dehydrogenase present in rat colonic mucosa. 13-OxoODE has been shown to stimulate cell proliferation when instilled intrarectally in rats. 13-OxoODE has also been detected in preparations of rabbit reticulocyte plasma and mitochondrial membranes, mostly esterified to phospholipids. Production of 13-oxoODE is putatively linked to the maturation of reticulocytes to erythrocytes through the activity of 15-LO.

   

Scutellarein

6-hydroxyapigenin

C15H10O6 (286.047736)


Scutellarein is a natural flavonoid compound with anti-inflammatory effects. Scutellarein is a natural flavonoid compound with anti-inflammatory effects.

   

Artemisin

Artemisin

C15H18O4 (262.1205028)


D009676 - Noxae > D016877 - Oxidants > D010545 - Peroxides

   

Vulgarin

9-hydroxy-3,5a,9-trimethyl-2H,3H,3aH,4H,5H,5aH,6H,9H,9aH,9bH-naphtho[1,2-b]furan-2,6-dione

C15H20O4 (264.13615200000004)


Vulgarin is found in mugwort. Vulgarin is a constituent of Artemisia vulgaris (mugwort) Constituent of Artemisia vulgaris (mugwort). Vulgarin is found in mugwort.

   

Tulipinolide

epi-Tulipinolide

C17H22O4 (290.1518012)


A germacranolide based on a 2,3,3a,4,5,8,9,11a-octahydrocyclodeca[b]furan-4-yl skeleton.

   

Apigenin 7,4'-dimethyl ether

5-hydroxy-7-methoxy-2-(4-methoxyphenyl)-4H-1-benzopyran-4-one

C17H14O5 (298.0841194)


Apigenin 7,4-dimethyl ether, also known as apigenin dimethylether or 4,7-dimethylapigenin, belongs to the class of organic compounds known as 7-O-methylated flavonoids. These are flavonoids with methoxy groups attached to the C7 atom of the flavonoid backbone. Thus, apigenin 7,4-dimethyl ether is considered to be a flavonoid lipid molecule. Apigenin 7,4-dimethyl ether is a very hydrophobic molecule, practically insoluble (in water), and relatively neutral. Outside of the human body, apigenin 7,4-dimethyl ether has been detected, but not quantified in, common sages and sweet basils. This could make apigenin 7,4-dimethyl ether a potential biomarker for the consumption of these foods. BioTransformer predicts that apigenin 7,4-dimethyl ether is a product of 4,5,7-trimethoxyflavone metabolism via an O-dealkylation reaction and catalyzed by CYP2C9 and CYP2C19 enzymes (PMID: 30612223). 4-methylgenkwanin, also known as apigenin dimethylether or 4,7-dimethylapigenin, is a member of the class of compounds known as 7-o-methylated flavonoids. 7-o-methylated flavonoids are flavonoids with methoxy groups attached to the C7 atom of the flavonoid backbone. Thus, 4-methylgenkwanin is considered to be a flavonoid lipid molecule. 4-methylgenkwanin is practically insoluble (in water) and a very weakly acidic compound (based on its pKa). 4-methylgenkwanin can be found in common sage and sweet basil, which makes 4-methylgenkwanin a potential biomarker for the consumption of these food products. The compound 7,4'-Di-O-methylapigenin may be partly responsible for the reported antifungal activity of C. zeyheri, and may serve as a potential source of lead compounds that can be developed as antifungal phytomedicines.And it also showed inhibition of the drug efflux pumps (with IC50 = 51.64 μg/ml). IC50:51.64 μg/ml(Candida albicans drug efflux pumps)[2] In vitro: The isolated 7,4'-Di-O-methylapigenin was further investigated for its inhibitory activity on ABC drug efflux pumps in C. albicans by monitoring an increase in ciprofloxacin, assessing the level of its accumulation, in response to reserpine. There was a higher accumulation of ciprofloxacin in Candida cells in the presence of 7,4'-Di-O-methylapigenin than with reserpine. The compound 7,4'-Di-O-methylapigenine demonstrated the activity in a dose-dependent manner with IC50 value of 51.64 μg/ml. These results support those obtained from synergism assays where by the underlying synergistic antifungal mechanisms could be due to blockage of ABC efflux pumps and increasing the susceptibility of Candida to miconazole.[2] In vivo: In searching for natural products as potential anti-inflammatory agents, 7,4'-Di-O-methylapigenin wasn't evaluated in vivo for its ability to inhibit acute inflammation.[1] The compound 7,4'-Di-O-methylapigenin may be partly responsible for the reported antifungal activity of C. zeyheri, and may serve as a potential source of lead compounds that can be developed as antifungal phytomedicines.And it also showed inhibition of the drug efflux pumps (with IC50 = 51.64 μg/ml). IC50:51.64 μg/ml(Candida albicans drug efflux pumps)[2] In vitro: The isolated 7,4'-Di-O-methylapigenin was further investigated for its inhibitory activity on ABC drug efflux pumps in C. albicans by monitoring an increase in ciprofloxacin, assessing the level of its accumulation, in response to reserpine. There was a higher accumulation of ciprofloxacin in Candida cells in the presence of 7,4'-Di-O-methylapigenin than with reserpine. The compound 7,4'-Di-O-methylapigenine demonstrated the activity in a dose-dependent manner with IC50 value of 51.64 μg/ml. These results support those obtained from synergism assays where by the underlying synergistic antifungal mechanisms could be due to blockage of ABC efflux pumps and increasing the susceptibility of Candida to miconazole.[2] In vivo: In searching for natural products as potential anti-inflammatory agents, 7,4'-Di-O-methylapigenin wasn't evaluated in vivo for its ability to inhibit acute inflammation.[1]

   

alpha-Copaene

TRICYCLO(4.4.0.02,7)DEC-3-ENE, 1,3-DIMETHYL-8-(1-METHYLETHYL)-, (1R,2S,6S,7S,8S)-

C15H24 (204.18779039999998)


alpha-Copaene, also known as aglaiene, belongs to the class of organic compounds known as sesquiterpenoids. These are terpenes with three consecutive isoprene units. alpha-Copaene is possibly neutral. alpha-Copaene is a spice and woody tasting compound that can be found in several food items such as lime, mandarin orange (clementine, tangerine), safflower, and summer savoury, which makes alpha-copaene a potential biomarker for the consumption of these food products. alpha-Copaene can be found in feces and saliva. Alpha-copaene, also known as copaene, is a member of the class of compounds known as sesquiterpenoids. Sesquiterpenoids are terpenes with three consecutive isoprene units. Alpha-copaene is a spice and woody tasting compound and can be found in a number of food items such as lime, mandarin orange (clementine, tangerine), safflower, and summer savory, which makes alpha-copaene a potential biomarker for the consumption of these food products. Alpha-copaene can be found primarily in feces and saliva. 8-Isopropyl-1,3-dimethyltricyclo(4.4.0.02,7)dec-3-ene is a natural product found in Pinus sylvestris var. hamata, Asarum gusk, and other organisms with data available.

   

Camphene

3,3-Dimethyl-2-methylidenebicyclo[2.2.1]heptane

C10H16 (136.1251936)


Camphene, also known as 2,2-dimethyl-3-methylenebicyclo[2.2.1]heptane or 2,2-dimethyl-3-methylenenorbornane, is a member of the class of compounds known as bicyclic monoterpenoids. Bicyclic monoterpenoids are monoterpenoids containing exactly 2 rings, which are fused to each other. Monoterpenoids are terpenes that contain 10 carbon atoms and are comprised of two isoprene units. The biosynthesis of monoterpenes is known to occur mainly through the methyl-erythritol-phosphate (MEP) pathway in plastids (PMID:7640522 ). Geranyl diphosphate (GPP) is a key intermediate in the biosynthesis of cyclic monoterpenes. GPP undergoes several cyclization reactions to yield a diverse number of cyclic arrangements. Camphene is nearly insoluble in water but very soluble in common organic solvents. It volatilizes readily at room temperature and has a pungent smell. It exists as a flammable, white solid that has a minty, citrus, eucalyptus odor. It is produced industrially by catalytic isomerization of the more common alpha-pinene. Camphene is used in the preparation of fragrances and in food additives for flavouring. In the mid-19th century it was used as a fuel for lamps, but this was limited by its explosiveness. Camphene exists in all eukaryotes, ranging from yeast to plants to humans. Camphene can be found in a number of food items such as dill, carrots, caraway, hyssop, lemon, orange, nutmeg seed, parsley, sage, thyme, turmeric and fennel, which makes camphene a potential biomarker for the consumption of these food products. It is a minor constituent of many essential oils such as turpentine, cypress oil, camphor oil, citronella oil, neroli, ginger oil, and valerian. Camphene is one of several monoterpenes that are found in cannabis plants (PMID:6991645 ). Camphene, also known as 2,2-dimethyl-3-methylenebicyclo[2.2.1]heptane or 2,2-dimethyl-3-methylenenorbornane, is a member of the class of compounds known as bicyclic monoterpenoids. Bicyclic monoterpenoids are monoterpenoids containing exactly 2 rings, which are fused to each other. Camphene is a camphor, fir needle, and herbal tasting compound and can be found in a number of food items such as cardamom, yellow bell pepper, common thyme, and coriander, which makes camphene a potential biomarker for the consumption of these food products. Camphene can be found primarily in feces and saliva. Camphene exists in all eukaryotes, ranging from yeast to humans. Camphene is a bicyclic monoterpene. It is nearly insoluble in water, but very soluble in common organic solvents. It volatilizes readily at room temperature and has a pungent smell. It is a minor constituent of many essential oils such as turpentine, cypress oil, camphor oil, citronella oil, neroli, ginger oil, and valerian. It is produced industrially by catalytic isomerization of the more common alpha-pinene. Camphene is used in the preparation of fragrances and as a food additive for flavoring. Its mid-19th century use as a fuel for lamps was limited by its explosiveness .

   

gamma-Humulene

(1E,6Z)-1,8,8-trimethyl-5-methylidenecycloundeca-1,6-diene (1E,6Z)-humula-1(11),4(13),5-triene

C15H24 (204.18779039999998)


   

Tomentin

2- (3,4-Dihydroxyphenyl) -5,6-dihydroxy-3,7-dimethoxy-4H-1-benzopyran-4-one

C17H14O8 (346.0688644)


   

Propyl cinnamate

3-Phenyl-propyl ester(2E)-2-propenoic acid

C12H14O2 (190.09937440000002)


Propyl cinnamate is a flavouring ingredient. Flavouring ingredient

   

Davidigenin

1- (2,4-Dihydroxyphenyl) -3- (4-hydroxyphenyl) -1-propanone

C15H14O4 (258.0892044)


A member of the class of dihydrochalcones that is dihydrochalcone substituted by hydroxy groups at positions 4, 2, and 4 respectively.

   

beta-Caryophyllene

trans-(1R,9S)-4,11,11-Trimethyl-8-methylenebicyclo[7.2.0]undec-4-ene

C15H24 (204.18779039999998)


beta-Caryophyllene, also known as caryophyllene or (−)-β-caryophyllene, is a natural bicyclic sesquiterpene that is a constituent of many essential oils including that of Syzygium aromaticum (cloves), Cannabis sativa, rosemary, and hops. It is usually found as a mixture with isocaryophyllene (the cis double bond isomer) and α-humulene (obsolete name: α-caryophyllene), a ring-opened isomer. beta-Caryophyllene is notable for having both a cyclobutane ring and a trans-double bond in a nine-membered ring, both rarities in nature (Wikipedia). beta-Caryophyllene is a sweet and dry tasting compound that can be found in a number of food items such as allspice, fig, pot marjoram, and roman camomile, which makes beta-caryophyllene a potential biomarker for the consumption of these food products. beta-Caryophyllene can be found in feces and saliva. (-)-Caryophyllene. CAS Common Chemistry. CAS, a division of the American Chemical Society, n.d. https://commonchemistry.cas.org/detail?cas_rn=87-44-5 (retrieved 2024-08-07) (CAS RN: 87-44-5). Licensed under the Attribution-Noncommercial 4.0 International License (CC BY-NC 4.0). β-Caryophyllene is a CB2 receptor agonist. β-Caryophyllene is a CB2 receptor agonist.

   

Ascaridole

1-Methyl-4-(1-methylethyl)-2,3-dioxabicyclo[2.2.2]oct-5-ene, 9ci

C10H16O2 (168.1150236)


Ascaridole is found in cardamom. Said to be the major constituent of oil of Peumus boldus (boldo).Ascaridole is a natural organic compound classified as a bicyclic monoterpene that has an unusual bridging peroxide functional group. It is the primary constituent of the oil of Mexican Tea (Dysphania ambrosioides, formerly Chenopodium ambrosioides). It is a colorless liquid that is soluble in most organic solvents. Like other low molecular weight organic peroxides, it is unstable and prone to explosion when heated or treated with organic acids Said to be the major constituent of oil of Peumus boldus (boldo) D009676 - Noxae > D016877 - Oxidants > D010545 - Peroxides

   

(+)-alpha-Carene

(1R,6S)-3,7,7-trimethylbicyclo[4.1.0]hept-3-ene

C10H16 (136.1251936)


(+)-alpha-Carene is found in herbs and spices. (+)-alpha-Carene is widespread plant product, found especially in turpentine oils (from Pinus species) and oil of galbanu Isolated from root oil of Kaempferia galanga. (-)-alpha-Carene is found in many foods, some of which are pummelo, cumin, herbs and spices, and sweet orange.

   

Chrysanthenone

(+)-Chrysanthenone

C10H14O (150.1044594)


   

fenchone

(1R,4S)-(+)-fenchone;(1R,4S)-1,3,3-trimethylbicyclo[2.2.1]heptan-2-one

C10H16O (152.12010859999998)


A carbobicyclic compound that is fenchane in which the hydrogens at position 2 are replaced by an oxo group. It is a component of essential oil from fennel (Foeniculum vulgare). Fenchone is a natural organic compound classified as a monoterpene and a ketone. It is a colorless oily liquid. It has a structure and an odor similar to camphor. Fenchone is a constituent of absinthe and the essential oil of fennel. Fenchone is used as a flavor in foods and in perfumery. Only 2 stereoisomers are possible: D-fenchone (enantiomer 1S,4R is dextrogyre (+)) and L-fenchone (enantiomer 1R,4S is levogyre (-)). Due to the small size of the cycle, the 2 other diastereoisomers (1S4S and 1R4R) are not possible. [Wikipedia]. Fenchone is found in many foods, some of which are ceylon cinnamon, sweet basil, saffron, and dill. (-)-Fenchone, a bicyclic monoterpene, is widely distributed in plants and found in essential oils from Foeniculum vulgare. (-)-Fenchone is oxidized to 6-endo-hydroxyfenchone, 6-exo-hydroxyfenchone and 10-hydroxyfenchone derivatives by CYP2A6 and CYP2B6 in human liver microsomes with CYP2A6 playing a more important role than CYP2B6[1]. (-)-Fenchone, a bicyclic monoterpene, is widely distributed in plants and found in essential oils from Foeniculum vulgare. (-)-Fenchone is oxidized to 6-endo-hydroxyfenchone, 6-exo-hydroxyfenchone and 10-hydroxyfenchone derivatives by CYP2A6 and CYP2B6 in human liver microsomes with CYP2A6 playing a more important role than CYP2B6[1]. (-)-Fenchone, a bicyclic monoterpene, is widely distributed in plants and found in essential oils from Foeniculum vulgare. (-)-Fenchone is oxidized to 6-endo-hydroxyfenchone, 6-exo-hydroxyfenchone and 10-hydroxyfenchone derivatives by CYP2A6 and CYP2B6 in human liver microsomes with CYP2A6 playing a more important role than CYP2B6[1]. (-)-Fenchone, a bicyclic monoterpene, is widely distributed in plants and found in essential oils from Foeniculum vulgare. (-)-Fenchone is oxidized to 6-endo-hydroxyfenchone, 6-exo-hydroxyfenchone and 10-hydroxyfenchone derivatives by CYP2A6 and CYP2B6 in human liver microsomes with CYP2A6 playing a more important role than CYP2B6[1].

   

(-)-Pinocarvone

6,6-dimethyl-2-methylidenebicyclo[3.1.1]heptan-3-one

C10H14O (150.1044594)


Pinocarvone, also known as (1)-2(10)-pinen-3-one or pina-2(10)-ene-3-one, is a member of the class of compounds known as bicyclic monoterpenoids. Bicyclic monoterpenoids are monoterpenoids containing exactly 2 rings, which are fused to each other. Thus, pinocarvone is considered to be an isoprenoid lipid molecule. Pinocarvone is practically insoluble (in water) and an extremely weak basic (essentially neutral) compound (based on its pKa). Pinocarvone is a minty tasting compound found in hyssop, spearmint, and sweet bay, which makes pinocarvone a potential biomarker for the consumption of these food products. (-)-Pinocarvone is isolated from oil of Eucalyptus globulus (Tasmanian blue gum

   

6-Hydroxyluteolin

2-(3,4-Dihydroxyphenyl)-5,6,7-trihydroxy-4H-1-benzopyran-4-one

C15H10O7 (302.042651)


Isolated from Valerianella eriocarpa (Italian corn salad). 6-Hydroxyluteolin is found in many foods, some of which are common thyme, mexican oregano, green vegetables, and lemon verbena. 6-Hydroxyluteolin is found in common thyme. 6-Hydroxyluteolin is isolated from Valerianella eriocarpa (Italian corn salad).

   

Pachypodol

4H-1-Benzopyran-4-one, 5-hydroxy-2-(4-hydroxy-3-methoxyphenyl)-3,7-dimethoxy-

C18H16O7 (344.0895986)


Pachypodol is a trimethoxyflavone that is quercetin in which the hydroxy groups at position 3, 7 and 3 are replaced by methoxy groups. It has been isolated from Combretum quadrangulare and Euodia elleryana. It has a role as a plant metabolite and an antiemetic. It is a dihydroxyflavone and a trimethoxyflavone. It is functionally related to a quercetin. Pachypodol is a natural product found in Larrea cuneifolia, Macaranga triloba, and other organisms with data available. A trimethoxyflavone that is quercetin in which the hydroxy groups at position 3, 7 and 3 are replaced by methoxy groups. It has been isolated from Combretum quadrangulare and Euodia elleryana. Pachypodol exerts antioxidant and cytoprotective effects in HepG2 cells[1].Pachypodol inhibits the growth of CaCo 2 colon cancer cell line in vitro(IC50 = 185.6 mM)[2]. Pachypodol exerts antioxidant and cytoprotective effects in HepG2 cells[1].Pachypodol inhibits the growth of CaCo 2 colon cancer cell line in vitro(IC50 = 185.6 mM)[2].

   

Pinocarveol

6,6-Dimethyl-3-hydroxy-2-methylenebicyclo(3.1.1)heptane

C10H16O (152.12010859999998)


Flavouring ingredient. Pinocarveol is found in many foods, some of which are spearmint, wild celery, hyssop, and sweet bay. Pinocarveol is found in hyssop. Pinocarveol is a flavouring ingredien

   

Tridecanol

1-Tridecanol, trialuminum salt

C13H28O (200.2140038)


1-tridecanol is a long chain fatty alcohol with a C-13 carbon back bone. It was found to be the most effective for controlling cariogenic bacterium. [HMDB] 1-tridecanol is a long chain fatty alcohol with a C-13 carbon back bone. It was found to be the most effective for controlling cariogenic bacterium.

   

beta-Bisabolene

(-)-beta-bisabolene;(S)-(-)-6-methyl-2-(4-methyl-3-cyclohexen-1-yl)-1,5-heptadiene;(S)-1-methyl-4-(5-methyl-1-methylene-4-hexenyl)cyclohexene

C15H24 (204.18779039999998)


S-beta-Bisabolene is found in anise. S-beta-Bisabolene is a constituent of the essential oils of bergamot, lemon and wild carrot Flavouring ingredient used singly or as mixed isomers. Component of FEMA 3331. See also 2,7,10-Bisabolatriene JHG85-W β-Bisabolene is a?sesquiterpene isolated from?opoponax (Commiphora guidotti). β-Bisabolene, an anti-cancer agent, can be used for the study of breast cancer[1]. β-Bisabolene is a?sesquiterpene isolated from?opoponax (Commiphora guidotti). β-Bisabolene, an anti-cancer agent, can be used for the study of breast cancer[1].

   

alpha-Bergamotene

(1R,5R)-2,6-dimethyl-6-(4-methylpent-3-en-1-yl)bicyclo[3.1.1]hept-2-ene

C15H24 (204.18779039999998)


Constituent of oils of carrot (Daucus carota), bergamot (Citrus bergamia), also lime (Citrus aurantifolia), citron (Citrus medica) and cottonseed oil (Gossypium hirsutum). alpha-Bergamotene is found in many foods, some of which are fats and oils, sweet basil, sweet orange, and lemon. alpha-Bergamotene is found in carrot. alpha-Bergamotene is a constituent of oils of carrot (Daucus carota), bergamot (Citrus bergamia), also lime (Citrus aurantifolia), citron (Citrus medica) and cottonseed oil (Gossypium hirsutum).

   

beta-Gurjunene

(1aR,4R,4aR,7aR,7bR)-1,1,4-trimethyl-7-methylidene-octahydro-1aH-cyclopropa[e]azulene

C15H24 (204.18779039999998)


Beta-gurjunene is a member of the class of compounds known as 5,10-cycloaromadendrane sesquiterpenoids. 5,10-cycloaromadendrane sesquiterpenoids are aromadendrane sesquiterpenoids that arise from the C5-C10 cyclization of the aromadendrane skeleton. Beta-gurjunene can be found in rosemary and winter savory, which makes beta-gurjunene a potential biomarker for the consumption of these food products.

   

Norcapillene

Norcapillene

C11H8 (140.0625968)


   

Gurjunene-alpha

(1aR,4R,4aR,7bS)-1,1,4,7-tetramethyl-1H,1aH,2H,3H,4H,4aH,5H,6H,7bH-cyclopropa[e]azulene

C15H24 (204.18779039999998)


Alpha-Gurjunene or (-)-Alpha-Gurjunene, belongs to the class of organic compounds known as 5,10-cycloaromadendrane sesquiterpenoids. These are aromadendrane sesquiterpenoids that arise from the C5-C10 cyclization of the aromadendrane skeleton. It is formally classified as a polycyclic hydrocarbon although it is biochemically a sesquiterpenoid as it synthesized via isoprene units. Sesquiterpenes are terpenes that contain 15 carbon atoms and are comprised of three isoprene units. The biosynthesis of sesquiterpenes is known to occur mainly through the mevalonic acid pathway (MVA), in the cytosol. However, recent studies have found evidence of pathway crosstalk with the methyl-erythritol-phosphate (MEP) pathway in the cytosol. Farnesyl diphosphate (FPP) is a key intermediate in the biosynthesis of cyclic sesquiterpenes. FPP undergoes several cyclization reactions to yield a diverse number of cyclic arrangements. Alpha-Gurjunene is a neutral, hydrophobic molecule that is insoluble in water. It exists as a colorless clear Liquid and has a woody, balsamic odor. It is used as a perfuming agent. Alpha-gurjunene is found in many plants, essential oils and foods including allspice, bay leaf, carrot seeds, eucalyptus, guava, parsley, black papper, sage and tea tree oil.

   

Bergamotene

(+)-Endo-beta-bergamotene

C15H24 (204.18779039999998)


   

(+)-Ledene

(1aR,7R,7aS,7bR)-1,1,4,7-tetramethyl-1H,1aH,2H,3H,5H,6H,7H,7aH,7bH-cyclopropa[e]azulene

C15H24 (204.18779039999998)


(+)-Ledene belongs to the class of organic compounds known as 5,10-cycloaromadendrane sesquiterpenoids. These are aromadendrane sesquiterpenoids that arise from the C5-C10 cyclization of the aromadendrane skeleton.

   

Bicyclogermacrene

(2Z,6Z)-3,7,11,11-tetramethylbicyclo[8.1.0]undeca-2,6-diene

C15H24 (204.18779039999998)


Constituent of the peel oil of Citrus junos (yuzu). Bicyclogermacrene is found in many foods, some of which are common oregano, lemon balm, hyssop, and orange mint. Bicyclogermacrene is found in citrus. Bicyclogermacrene is a constituent of the peel oil of Citrus junos (yuzu).

   

Artemisinic alcohol

4,11(13)-Cadinadien-12-ol

C15H24O (220.18270539999997)


   

6-hydroxycamphor

(1S)-6-Hydroxy-1,7,7-trimethylbicyclo[2.2.1]heptan-2-one

C10H16O2 (168.1150236)


   

Phenol

Phenolated water for disinfection

C6H6O (94.0418626)


Phenol, is a toxic, colourless crystalline solid with a sweet tarry odor that resembles a hospital smell. It is commonly used as an antiseptic and disinfectant. It is active against a wide range of micro-organisms including some fungi and viruses, but is only slowly effective against spores. It has been used to disinfect skin and to relieve itching. Phenol is also used in the preparation of cosmetics including sunscreens, hair dyes, and skin lightening preparations. It is also used in the production of drugs (it is the starting material in the industrial production of aspirin), weedkillers, and synthetic resins. Phenol can be found in areas with high levels of motor traffic, therefore, people living in crowded urban areas are frequently exposed to traffic-derived phenol vapor. The average (mean +/- SD) phenol concentration in urine among normal individuals living in urban areas is 7.4 +/- 2.2 mg/g of creatinine. Exposure of the skin to concentrated phenol solutions causes chemical burns which may be severe; in laboratories where it is used, it is usually recommended that polyethylene glycol solution is kept available for washing off splashes. Notwithstanding the effects of concentrated solutions, it is also used in cosmetic surgery as an exfoliant, to remove layers of dead skin (Wikipedia). In some bacteria phenol can be directly synthesized from tyrosine via the enzyme tyrosine phenol-lyase [EC:4.1.99.2]. It can be produced by Escherichia and Pseudomonas. Phenol has been identified as a uremic toxin according to the European Uremic Toxin Working Group (PMID: 22626821). It is used as a flavouring agent in a few foods, at maximum levels below 10 ppm

   

(-)-cis-Carveol

2-Methyl-5-(1-methylethenyl)-(1R-cis)-2-cyclohexen-1-ol

C10H16O (152.12010859999998)


(-)-cis-Carveol is found in citrus. (-)-cis-Carveol is a constituent of Valencia orange oil (Citrus sinensis). (-)-cis-Carveol is a flavouring agent Constituent of Valencia orange oil (Citrus sinensis). Flavouring agent. (-)-cis-Carveol is found in citrus.

   

Hemimellitene

1,2,3-TRIMETHYLBENZENE

C9H12 (120.09389519999999)


Hemimellitene, also known as hemellitol or 123-trimethylbenzene, belongs to benzene and substituted derivatives class of compounds. Those are aromatic compounds containing one monocyclic ring system consisting of benzene. Hemimellitene can be found in black walnut and corn, which makes hemimellitene a potential biomarker for the consumption of these food products. Hemimellitene can be found primarily in feces and saliva. Hemimellitene exists in all eukaryotes, ranging from yeast to humans. Hemimellitene is an organic compound with the chemical formula C6H3(CH3)3. Classified as an aromatic hydrocarbon, it is a flammable colorless liquid. It is nearly insoluble in water but soluble in organic solvents. It occurs naturally in coal tar and petroleum. It is one of the three isomers of trimethylbenzene. It is used in jet fuel, mixed with other hydrocarbons, to prevent the formation of solid particles which might damage the engine . Hemimellitene belongs to the family of Toluenes. These are compounds containing a benzene ring which bears a methane group.

   

1-Dihydrocarveol

2-methyl-5-(prop-1-en-2-yl)cyclohexan-1-ol

C10H18O (154.1357578)


Dihydrocarveol, also known as 2-methyl-5-(1-methylethenyl)cyclohexanol or 6-methyl-3-isopropenylcyclohexanol, is a member of the class of compounds known as menthane monoterpenoids. Menthane monoterpenoids are monoterpenoids with a structure based on the o-, m-, or p-menthane backbone. P-menthane consists of the cyclohexane ring with a methyl group and a (2-methyl)-propyl group at the 1 and 4 ring position, respectively. The o- and m- menthanes are much rarer, and presumably arise by alkyl migration of p-menthanes. Dihydrocarveol is slightly soluble (in water) and an extremely weak acidic compound (based on its pKa). Dihydrocarveol is a herbal, menthol, and minty tasting compound and can be found in a number of food items such as spearmint, dill, pot marjoram, and pepper (spice), which makes dihydrocarveol a potential biomarker for the consumption of these food products. Dihydrocarveol, also known as 2-methyl-5-(1-methylethenyl)cyclohexanol or 6-methyl-3-isopropenylcyclohexanol, is a member of the class of compounds known as menthane monoterpenoids. Menthane monoterpenoids are monoterpenoids with a structure based on the o-, m-, or p-menthane backbone. P-menthane consists of the cyclohexane ring with a methyl group and a (2-methyl)-propyl group at the 1 and 4 ring position, respectively. The o- and m- menthanes are much rarer, and presumably arise by alkyl migration of p-menthanes. Dihydrocarveol is slightly soluble (in water) and an extremely weak acidic compound (based on its pKa). Dihydrocarveol is a herbal, menthol, and minty tasting compound and can be found in a number of food items such as dill, pot marjoram, pepper (spice), and caraway, which makes dihydrocarveol a potential biomarker for the consumption of these food products.

   

Pinene

(1R,5R)-2,6,6-Trimethylbicyclo[3.1.1]hept-2-ene

C10H16 (136.1251936)


Pinene (is a bicyclic monoterpene chemical compound. There are two structural isomers of pinene found in nature: alpha-pinene and beta-pinene. As the name suggests, both forms are important constituents of pine resin; they are also found in the resins of many other conifers, as well as in non-coniferous plants. Both isomers are used by many insects in their chemical communication system.

   

β-Pinene

(1S,5S)-7,7-dimethyl-4-methylidene-bicyclo[3.1.1]heptane

C10H16 (136.1251936)


An isomer of pinene with an exocyclic double bond. It is a component of essential oils from many plants. Widely distributed in plants, usually associated with a-Pinene JPV84-W but in smaller amounts. Found in lime peel oil, ginger, nutmeg, mace, bitter fennel, rosemary and sage. Flavour ingredient β-Pinene ((-)-β-Pinene), a major component of turpentine, inhibit infectious bronchitis virus (IBV) with an IC50 of 1.32 mM. β-Pinene presents antimicrobial activity[1][2]. β-Pinene ((-)-β-Pinene), a major component of turpentine, inhibit infectious bronchitis virus (IBV) with an IC50 of 1.32 mM. β-Pinene presents antimicrobial activity[1][2].

   

Leucodin

Desacetoxymatricarin

C15H18O3 (246.1255878)


   

Genkwanin

4H-1-Benzopyran-4-one, 5-hydroxy-2-(4-hydroxyphenyl)-7-methoxy-

C16H12O5 (284.0684702)


Genkwanin is a monomethoxyflavone that is apigenin in which the hydroxy group at position 7 is methylated. It has a role as a metabolite. It is a dihydroxyflavone and a monomethoxyflavone. It is functionally related to an apigenin. It is a conjugate acid of a genkwanin(1-). Genkwanin is a natural product found in Odontites viscosus, Eupatorium capillifolium, and other organisms with data available. A monomethoxyflavone that is apigenin in which the hydroxy group at position 7 is methylated. Genkwanin is a major non-glycosylated flavonoid with anti-flammatory activities. Genkwanin is a major non-glycosylated flavonoid with anti-flammatory activities.

   

Vitexin

5,7-dihydroxy-2-(4-hydroxyphenyl)-8-((2S,3R,4R,5S,6R)-3,4,5-trihydroxy-6-(hydroxymethyl)tetrahydro-2H-pyran-2-yl)-4H-chromen-4-one

C21H20O10 (432.105642)


Vitexin is an apigenin flavone glycoside, which is found in the passion flower, bamboo leaves and pearl millet It has a role as a platelet aggregation inhibitor, an EC 3.2.1.20 (alpha-glucosidase) inhibitor, an antineoplastic agent and a plant metabolite. It is a C-glycosyl compound and a trihydroxyflavone. It is functionally related to an apigenin. It is a conjugate acid of a vitexin-7-olate. Vitexin is a natural product found in Itea chinensis, Salacia chinensis, and other organisms with data available. See also: Cannabis sativa subsp. indica top (part of); Cytisus scoparius flowering top (part of); Fenugreek seed (part of) ... View More ... An apigenin flavone glycoside, which is found in the passion flower, bamboo leaves and pearl millet Vitexin is a c-glycosylated flavone, and is found in various medicinal plants species such as Trigonella foenum-graecum Linn. Vitexin has a wide range of pharmacological effects, including anti-oxidant, anti-cancer, anti-inflammatory, anti-hyperalgesic, and neuroprotective effects[1][2]. Vitexin is a c-glycosylated flavone, and is found in various medicinal plants species such as Trigonella foenum-graecum Linn. Vitexin has a wide range of pharmacological effects, including anti-oxidant, anti-cancer, anti-inflammatory, anti-hyperalgesic, and neuroprotective effects[1][2].

   

Honokiol

InChI=1/C18H18O2/c1-3-5-13-7-9-18(20)16(11-13)14-8-10-17(19)15(12-14)6-4-2/h3-4,7-12,19-20H,1-2,5-6H

C18H18O2 (266.1306728)


Honokiol is a member of biphenyls. Honokiol is a natural product found in Illicium simonsii, Illicium fargesii, and other organisms with data available. D002492 - Central Nervous System Depressants > D014149 - Tranquilizing Agents > D014151 - Anti-Anxiety Agents D002491 - Central Nervous System Agents > D011619 - Psychotropic Drugs > D014149 - Tranquilizing Agents D002491 - Central Nervous System Agents > D002492 - Central Nervous System Depressants D002317 - Cardiovascular Agents > D000889 - Anti-Arrhythmia Agents D005765 - Gastrointestinal Agents D000890 - Anti-Infective Agents D000970 - Antineoplastic Agents D018926 - Anti-Allergic Agents D004791 - Enzyme Inhibitors Honokiol is a bioactive, biphenolic phytochemical that possesses potent antioxidative, anti-inflammatory, antiangiogenic, and anticancer activities by targeting a variety of signaling molecules. It inhibits the activation of Akt. Honokiol can readily cross the blood brain barrier[1][2][3][4]. Honokiol is a bioactive, biphenolic phytochemical that possesses potent antioxidative, anti-inflammatory, antiangiogenic, and anticancer activities by targeting a variety of signaling molecules. It inhibits the activation of Akt. Honokiol can readily cross the blood brain barrier[1][2][3][4]. Honokiol is a bioactive, biphenolic phytochemical that possesses potent antioxidative, anti-inflammatory, antiangiogenic, and anticancer activities by targeting a variety of signaling molecules. It inhibits the activation of Akt. Honokiol can readily cross the blood brain barrier[1][2][3][4].

   

Spathulenol

1H-Cycloprop(e)azulen-7-ol, decahydro-1,1,7-trimethyl-4-methylene-, (1aR-(1aalpha,4aalpha,7beta,7abeta,7balpha))-

C15H24O (220.18270539999997)


Spathulenol is a tricyclic sesquiterpenoid that is 4-methylidenedecahydro-1H-cyclopropa[e]azulene carrying three methyl substituents at positions 1, 1 and 7 as well as a hydroxy substituent at position 7. It has a role as a volatile oil component, a plant metabolite, an anaesthetic and a vasodilator agent. It is a sesquiterpenoid, a carbotricyclic compound, a tertiary alcohol and an olefinic compound. Spathulenol is a natural product found in Xylopia aromatica, Xylopia emarginata, and other organisms with data available. See also: Chamomile (part of). A tricyclic sesquiterpenoid that is 4-methylidenedecahydro-1H-cyclopropa[e]azulene carrying three methyl substituents at positions 1, 1 and 7 as well as a hydroxy substituent at position 7. Spathulenol is found in alcoholic beverages. Spathulenol is a constituent of Salvia sclarea (clary sage).

   

Pinoresinol

Phenol,4-(tetrahydro-1H,3H-furo[3,4-c]furan-1,4-diyl)bis[2-methoxy-, [1S-(1.alpha.,3a.alpha.,4.alpha.,6a.alpha.)]-

C20H22O6 (358.1416312)


4-[6-(4-Hydroxy-3-methoxyphenyl)-1,3,3a,4,6,6a-hexahydrofuro[3,4-c]furan-3-yl]-2-methoxyphenol is a natural product found in Zanthoxylum riedelianum, Forsythia suspensa, and other organisms with data available. Pinoresinol is a lignol of plant origin serving for defense in a caterpillar. Pinoresinol drastically sensitizes cancer cells against TNF-related apoptosis-inducing ligand (TRAIL) -induced apoptosis[1][2]. Pinoresinol is a lignol of plant origin serving for defense in a caterpillar. Pinoresinol drastically sensitizes cancer cells against TNF-related apoptosis-inducing ligand (TRAIL) -induced apoptosis[1][2].

   

alpha-Carene

Bicyclo(4.1.0)hept-3-ene, 3,7,7(or 4,7,7)-trimethyl-

C10H16 (136.1251936)


Carene is a colorless liquid with a sweet, turpentine-like odor. Floats on water. (USCG, 1999) Car-3-ene is a monoterpene. It derives from a hydride of a carane. 3-Carene is a natural product found in Nepeta nepetella, Xylopia aromatica, and other organisms with data available. See also: Cannabis sativa subsp. indica top (part of). alpha-Carene is found in allspice. alpha-Carene is a flavouring ingredient.Carene, or delta-3-carene, is a bicyclic monoterpene which occurs naturally as a constituent of turpentine, with a content as high as 42\\% depending on the source. Carene has a sweet and pungent odor. It is not soluble in water, but miscible with fats and oils Flavouring ingredient

   

Ethyl oleate

9-Octadecenoic acid (Z)-, ethyl ester

C20H38O2 (310.28716479999997)


Ethyl oleate is found in sweet marjoram. Ethyl oleate is a flavouring ingredient.Ethyl oleate is the ester formed by the condensation of the fatty acid oleic acid and ethanol. It is a colorless to light yellow liquid. Ethyl oleate is produced by the body during ethanol intoxication Flavouring ingredient Ethyl Oleate is a fatty acid ester formed by the condensation of oleic acid and ethanol. Ethyl oleate is the liquid lipid component in nanostructured lipid carriers (NLCs). NLC is a promising vehicle for oral trans-Ferulic acid (TFA) administration[1]. Ethyl Oleate is a fatty acid ester formed by the condensation of oleic acid and ethanol. Ethyl oleate is the liquid lipid component in nanostructured lipid carriers (NLCs). NLC is a promising vehicle for oral trans-Ferulic acid (TFA) administration[1].

   

Vitexin

8-beta-D-Glucopyranosyl-5,7-dihydroxy-2-(4-hydroxyphenyl)-4H-1-benzopyran-4-one

C21H20O10 (432.105642)


Vitexin is a c-glycosylated flavone, and is found in various medicinal plants species such as Trigonella foenum-graecum Linn. Vitexin has a wide range of pharmacological effects, including anti-oxidant, anti-cancer, anti-inflammatory, anti-hyperalgesic, and neuroprotective effects[1][2]. Vitexin is a c-glycosylated flavone, and is found in various medicinal plants species such as Trigonella foenum-graecum Linn. Vitexin has a wide range of pharmacological effects, including anti-oxidant, anti-cancer, anti-inflammatory, anti-hyperalgesic, and neuroprotective effects[1][2].

   

Corymboside

5,7-dihydroxy-2-(4-hydroxyphenyl)-8-[3,4,5-trihydroxy-6-(hydroxymethyl)oxan-2-yl]-6-(3,4,5-trihydroxyoxan-2-yl)-4H-chromen-4-one

C26H28O14 (564.1478988)


Corymboside is found in cereals and cereal products. Corymboside is isolated from Triticum aestivum (wheat) (as acyl derivatives) Isolated from Triticum aestivum (wheat) (as acyl derivs.). Corymboside is found in wheat and cereals and cereal products.

   

beta-Farnesene

(6Z)-7,11-dimethyl-3-methylidenedodeca-1,6,10-triene

C15H24 (204.18779039999998)


A mixture with 1,3,6,10-Farnesatetraene JXF60-O has been isolated from many plant sources and is used as a food flavourant (woodgreen flavour). beta-Farnesene is found in sweet basil. (E)-beta-Farnesene is found in anise. (E)-beta-Farnesene is a constituent of hop, camomile and other essential oils (E)-β-Farnesene (trans-β-Farnesene) is a volatile sesquiterpene hydrocarbon which can be found in Phlomis aurea Decne essential oil. (E)-β-Farnesene can be used as a feeding stimulant for the sand fly Lutzomyia longipalpis[1][2]. (E)-β-Farnesene (trans-β-Farnesene) is a volatile sesquiterpene hydrocarbon which can be found in Phlomis aurea Decne essential oil. (E)-β-Farnesene can be used as a feeding stimulant for the sand fly Lutzomyia longipalpis[1][2].

   

Quercimeritrin

Quercetin 7-O-beta-D-glucoside

C21H20O12 (464.09547200000003)


Quercimeritrin, isolated from the leaves of Ixeridium dentatum, exhibits significant amylase activity[1]. Quercimeritrin, isolated from the leaves of Ixeridium dentatum, exhibits significant amylase activity[1].

   

1-Epi-alpha-gurjunene

1H-Cycloprop[e]azulene, 1a,2,3,4,4a,5,6,7b-octahydro-1,1,4,7-tetramethyl-, [1aR-(1a.alpha.,4.alpha.,4a.beta.,7b.alpha.)]-

C15H24 (204.18779039999998)


1-Epi-alpha-gurjunene is a constituent of Tolu balsam (Myroxylon balsamum var. balsamum). 1-Epi-alpha-gurjunene is a food flavouring. Constituent of Tolu balsam (Myroxylon balsamum variety balsamum). Food flavouring

   

Desacetyllaurenobiolide

4-hydroxy-6,10-dimethyl-3-methylidene-2H,3H,3aH,4H,7H,8H,11H,11aH-cyclodeca[b]furan-2-one

C15H20O3 (248.14123700000002)


Desacetyllaurenobiolide is found in herbs and spices. Desacetyllaurenobiolide is a constituent of Artemisia species. Constituent of Artemisia subspecies Desacetyllaurenobiolide is found in sweet bay and herbs and spices.

   

Arlatin

6,6a-dihydroxy-3,6,9-trimethyl-2H,3H,3aH,4H,5H,6H,6aH,7H,9aH,9bH-azuleno[4,5-b]furan-2-one

C15H22O4 (266.1518012)


Constituent of Artemisia absinthium (wormwood). Arlatin is found in alcoholic beverages and herbs and spices. Arlatin is found in alcoholic beverages. Arlatin is a constituent of Artemisia absinthium (wormwood)

   

Cinnamyl cinnamate

(2E)-3-Phenylprop-2-en-1-yl (2Z)-3-phenylprop-2-enoic acid

C18H16O2 (264.1150236)


Cinnamyl cinnamate occurs in storax and Peruvian balsam. Cinnamyl cinnamate is a flavouring agent. Occurs in storax and Peruvian balsam. Flavouring agent

   

3-(2-HYDROXY-4-METHOXYPHENYL)PROP-2-ENOIC ACID

3-(2-HYDROXY-4-METHOXYPHENYL)PROP-2-ENOIC ACID

C10H10O4 (194.057906)


   

Neryl butyrate

Butanoic acid, (2Z)-3,7-dimethyl-2,6-octadien-1-yl ester

C14H24O2 (224.1776204)


Geranyl butyrate is found in citrus. Geranyl butyrate is found in citrus peel oils, kumquat peel oil, celery leaves/stalks, tomato, yellow passion fruit, lavender oil and other essential oils. Geranyl butyrate is a flavouring agent. Found in citrus peel oils, kumquat peel oil, celery leaves/stalks, tomato, yellow passion fruit, lavender oil and other essential oils. Flavouring agent

   

Ketopelenolide a

3,6,10-trimethyl-2H,3H,3aH,4H,5H,8H,9H,10H,11H,11aH-cyclodeca[b]furan-2,9-dione

C15H22O3 (250.1568862)


From Artemisia absinthium (wormwood). Ketopelenolide a is found in alcoholic beverages and herbs and spices. Ketopelenolide b is found in alcoholic beverages. Ketopelenolide b is from Artemisia absinthium (wormwood).

   

Vicinin 2

5,7-dihydroxy-2-(4-hydroxyphenyl)-6,8-bis({[3,4,5-trihydroxy-6-(hydroxymethyl)oxan-2-yl]oxy})-4H-chromen-4-one

C27H30O17 (626.148293)


Vicinin 2 is found in citrus. Vicinin 2 is a constituent of lemon (Citrus limon) peel and sugar cane syrup. Constituent of lemon (Citrus limon) peel and sugar cane syrup. Vicinin 2 is found in citrus.

   

Estragonoside

5,6,7-trihydroxy-2-(4-hydroxy-3-methoxyphenyl)-8-[(3,4,5-trihydroxy-6-methyloxan-2-yl)oxy]-4H-chromen-4-one

C22H22O12 (478.1111212)


Estragonoside is found in herbs and spices. Estragonoside is a constituent of Artemisia dracunculus (tarragon). Constituent of Artemisia dracunculus (tarragon). Estragonoside is found in herbs and spices.

   

alpha-Bergamotenol

(2Z)-5-{2,6-dimethylbicyclo[3.1.1]hept-2-en-6-yl}-2-methylpent-2-en-1-ol

C15H24O (220.18270539999997)


alpha-Bergamotenol is found in cereals and cereal products. alpha-Bergamotenol is a constituent of the famine food Santalum album (sandalwood). alpha-Bergamotenol is a flavouring ingredient. Constituent of the famine food Santalum album (sandalwood). Flavouring ingredient. alpha-Bergamotenol is found in cereals and cereal products.

   

2-Methyldecane

Decane, 2-methyl- (8ci)(9ci)

C11H24 (156.18779039999998)


2-Methyldecane is found in herbs and spices. 2-Methyldecane is a constituent of Angelica species, Cicer arietinum (chickpea). Constituent of Angelica subspecies, Cicer arietinum (chickpea). 2-Methyldecane is found in herbs and spices and pulses.

   

5,7-dihydroxy-6-methoxy-2-(4-methoxyphenyl)-3,4-dihydro-2H-1-benzopyran-4-one

5,7-dihydroxy-6-methoxy-2-(4-methoxyphenyl)-3,4-dihydro-2H-1-benzopyran-4-one

C17H16O6 (316.0946836)


   

Ethyl 2-methylbutyrate

Butyric acid, 2-methyl-, ethyl ester (8ci)

C7H14O2 (130.09937440000002)


Ethyl 2-methylbutyrate is found in bilberry. Ethyl 2-methylbutyrate is found in many fruits, e.g.raw and cooked apple, apricot, orange, grapefruit. Ethyl 2-methylbutyrate is a flavouring agent. Ethyl 2-methylbutyrate is used in fruit flavouring. Found in many fruits, e.g.raw and cooked apple, apricot, orange, grapefruit. Flavouring agent. It is used in fruit flavouring.

   

(-)-3-Thujone

(1R,4R,5S)-4-methyl-1-(propan-2-yl)bicyclo[3.1.0]hexan-3-one

C10H16O (152.12010859999998)


Thujone is a ketone and a monoterpene that occurs naturally in two diastereomeric forms: (-)-alpha-thujone and (+)-beta-thujone. It has a menthol odor. In addition to (-)-alpha-thujone and (+)-beta-thujone, there are their enantiomeric forms, (+)-alpha-thujone and (-)-beta-thujone. (Wikipedia Thujone is a ketone and a monoterpene that occurs naturally in two diastereomeric forms: (-)-alpha-thujone and (+)-beta-thujone. It has a menthol odor. In addition to (-)-alpha-thujone and (+)-beta-thujone, there are their enantiomeric forms, (+)-alpha-thujone and (-)-beta-thujone.

   

Isopropyl tiglate

2-Butenoic acid, 2-methyl-, 1-methylethyl ester, (e)- (9ci)

C8H14O2 (142.09937440000002)


Isopropyl tiglate is a flavouring ingredient. Flavouring ingredient

   

Deoxyartemsinin

(1R,4R,5S,8R,9S,12S)-12-hydroxy-4,8,12-trimethyl-2,13-dioxatricyclo[7.4.1.0⁵,¹⁴]tetradec-6-en-3-one

C15H22O4 (266.1518012)


Deoxyartemsinin is a metabolite of artemisinin. Artemisinin, also known as Qinghaosu, and its derivatives are a group of drugs that possess the most rapid action of all current drugs against Plasmodium falciparum malaria. Treatments containing an artemisinin derivative (artemisinin-combination therapies, ACTs) are now standard treatment worldwide for P. falciparum malaria. The starting compound artemisinin is isolated from the plant Artemisia annua, sweet wormwood, an herb employed in Chinese traditional medicine. (Wikipedia)

   

Ylangene

(1R,8R)-1,3-dimethyl-8-(propan-2-yl)tricyclo[4.4.0.0²,⁷]dec-3-ene

C15H24 (204.18779039999998)


Ylangene belongs to the class of organic compounds known as sesquiterpenoids. These are terpenes with three consecutive isoprene units.

   

(-)-Abscisic acid

5-(1-hydroxy-2,6,6-trimethyl-4-oxocyclohex-2-en-1-yl)-3-methylpenta-2,4-dienoic acid

C15H20O4 (264.13615200000004)


   

alpha-Amyrin

4,4,6a,6b,8a,11,12,14b-octamethyl-1,2,3,4,4a,5,6,6a,6b,7,8,8a,9,10,11,12,12a,14,14a,14b-icosahydropicen-3-ol

C30H50O (426.386145)


Epi-alpha-amyrin, also known as epi-α-amyrin, is a member of the class of compounds known as triterpenoids. Triterpenoids are terpene molecules containing six isoprene units. Epi-alpha-amyrin is practically insoluble (in water) and an extremely weak acidic compound (based on its pKa). Epi-alpha-amyrin can be found in herbs and spices, pomes, and rosemary, which makes epi-alpha-amyrin a potential biomarker for the consumption of these food products.

   

Arteannuin B

8,12-dimethyl-4-methylidene-2,13-dioxatetracyclo[7.5.0.0¹,⁵.0¹²,¹⁴]tetradecan-3-one

C15H20O3 (248.14123700000002)


   

Artemisin

4-hydroxy-3,5a,9-trimethyl-2H,3H,3aH,4H,5H,5aH,8H,9bH-naphtho[1,2-b]furan-2,8-dione

C15H18O4 (262.1205028)


D009676 - Noxae > D016877 - Oxidants > D010545 - Peroxides

   

Artepillin C

3-[4-hydroxy-3,5-bis(3-methylbut-2-en-1-yl)phenyl]prop-2-enoic acid

C19H24O3 (300.1725354)


   

Epimagnolin

1-(3,4-dimethoxyphenyl)-4-(3,4,5-trimethoxyphenyl)-hexahydrofuro[3,4-c]furan

C23H28O7 (416.1834938)


   

Epipinoresinol

4-[4-(4-hydroxy-3-methoxyphenyl)-hexahydrofuro[3,4-c]furan-1-yl]-2-methoxyphenol

C20H22O6 (358.1416312)


(+)-pinoresinol is a member of the class of compounds known as furanoid lignans. Furanoid lignans are lignans with a structure that contains either a tetrahydrofuran ring, a furan ring, or a furofuan ring system, that arises from the joining of the two phenylpropanoid units (+)-pinoresinol is practically insoluble (in water) and a very weakly acidic compound (based on its pKa). (+)-pinoresinol can be found in a number of food items such as chanterelle, pecan nut, pine nut, and common hazelnut, which makes (+)-pinoresinol a potential biomarker for the consumption of these food products. Pinoresinol is a lignol of plant origin serving for defense in a caterpillar. Pinoresinol drastically sensitizes cancer cells against TNF-related apoptosis-inducing ligand (TRAIL) -induced apoptosis[1][2]. Pinoresinol is a lignol of plant origin serving for defense in a caterpillar. Pinoresinol drastically sensitizes cancer cells against TNF-related apoptosis-inducing ligand (TRAIL) -induced apoptosis[1][2].

   

Friedelin

4,4a,6b,8a,11,11,12b,14a-octamethyl-docosahydropicen-3-one

C30H50O (426.386145)


Friedelin is a member of the class of compounds known as triterpenoids. Triterpenoids are terpene molecules containing six isoprene units. Friedelin is practically insoluble (in water) and an extremely weak basic (essentially neutral) compound (based on its pKa). Friedelin can be found in a number of food items such as apple, pear, mammee apple, and sugar apple, which makes friedelin a potential biomarker for the consumption of these food products. Friedelin is a triterpenoid chemical compound found in Azima tetracantha, Orostachys japonica, and Quercus stenophylla. Friedelin is also found in the roots of the Cannabis plant .

   

Lupenone

1,2,5,14,18,18-hexamethyl-8-(prop-1-en-2-yl)pentacyclo[11.8.0.0²,¹⁰.0⁵,⁹.0¹⁴,¹⁹]henicosan-17-one

C30H48O (424.37049579999996)


1,2,5,14,18,18-hexamethyl-8-(prop-1-en-2-yl)pentacyclo[11.8.0.0²,¹⁰.0⁵,⁹.0¹⁴,¹⁹]henicosan-17-one belongs to the class of organic compounds known as triterpenoids. These are terpene molecules containing six isoprene units. 1,2,5,14,18,18-hexamethyl-8-(prop-1-en-2-yl)pentacyclo[11.8.0.0²,¹⁰.0⁵,⁹.0¹⁴,¹⁹]henicosan-17-one is an extremely weak basic (essentially neutral) compound (based on its pKa). This compound has been identified in human blood as reported by (PMID: 31557052 ). Lupenone is not a naturally occurring metabolite and is only found in those individuals exposed to this compound or its derivatives. Technically Lupenone is part of the human exposome. The exposome can be defined as the collection of all the exposures of an individual in a lifetime and how those exposures relate to health. An individual's exposure begins before birth and includes insults from environmental and occupational sources.

   

quercetin 3'-O-glucoside

3,5,7-trihydroxy-2-(4-hydroxy-3-{[3,4,5-trihydroxy-6-(hydroxymethyl)oxan-2-yl]oxy}phenyl)-4H-chromen-4-one

C21H20O12 (464.09547200000003)


   

Vitexin

5,7-dihydroxy-2-(4-hydroxyphenyl)-8-[3,4,5-trihydroxy-6-(hydroxymethyl)oxan-2-yl]-4H-chromen-4-one

C21H20O10 (432.105642)


Vitexin is a member of the class of compounds known as flavonoid 8-c-glycosides. Flavonoid 8-c-glycosides are compounds containing a carbohydrate moiety which is C-glycosidically linked to 8-position of a 2-phenylchromen-4-one flavonoid backbone. Vitexin is slightly soluble (in water) and a very weakly acidic compound (based on its pKa). Vitexin can be found in a number of food items such as flaxseed, prairie turnip, mung bean, and tree fern, which makes vitexin a potential biomarker for the consumption of these food products. Vitexin is an apigenin flavone glucoside, a chemical compound found in the passion flower, Vitex agnus-castus (chaste tree or chasteberry), in the Phyllostachys nigra bamboo leaves, in the pearl millet (Pennisetum millet), and in Hawthorn . Isovitexin is a flavonoid isolated from passion flower, Cannabis and, and the palm, possesses anti-inflammatory and anti-oxidant activities; Isovitexin acts like a JNK1/2 inhibitor and inhibits the activation of NF-κB. Isovitexin is a flavonoid isolated from passion flower, Cannabis and, and the palm, possesses anti-inflammatory and anti-oxidant activities; Isovitexin acts like a JNK1/2 inhibitor and inhibits the activation of NF-κB. Vitexin is a c-glycosylated flavone, and is found in various medicinal plants species such as Trigonella foenum-graecum Linn. Vitexin has a wide range of pharmacological effects, including anti-oxidant, anti-cancer, anti-inflammatory, anti-hyperalgesic, and neuroprotective effects[1][2]. Vitexin is a c-glycosylated flavone, and is found in various medicinal plants species such as Trigonella foenum-graecum Linn. Vitexin has a wide range of pharmacological effects, including anti-oxidant, anti-cancer, anti-inflammatory, anti-hyperalgesic, and neuroprotective effects[1][2].

   

Apigenin 7-(6'-O-alpha-rhamnosyl-beta-glucoside)

5-hydroxy-2-(4-hydroxyphenyl)-7-{[(2S,3R,4S,5S,6R)-3,4,5-trihydroxy-6-({[(2S,3R,4R,5R,6S)-3,4,5-trihydroxy-6-methyloxan-2-yl]oxy}methyl)oxan-2-yl]oxy}-4H-chromen-4-one

C27H30O14 (578.163548)


Apigenin 7-(6-o-alpha-rhamnosyl-beta-glucoside) is a member of the class of compounds known as flavonoid-7-o-glycosides. Flavonoid-7-o-glycosides are phenolic compounds containing a flavonoid moiety which is O-glycosidically linked to carbohydrate moiety at the C7-position. Apigenin 7-(6-o-alpha-rhamnosyl-beta-glucoside) is slightly soluble (in water) and a very weakly acidic compound (based on its pKa). Apigenin 7-(6-o-alpha-rhamnosyl-beta-glucoside) can be found in lemon, which makes apigenin 7-(6-o-alpha-rhamnosyl-beta-glucoside) a potential biomarker for the consumption of this food product.

   

p-Menth-cis-2-en-1-ol

1-methyl-4-(propan-2-yl)cyclohex-2-en-1-ol

C10H18O (154.1357578)


P-menth-cis-2-en-1-ol, also known as quercivorol, is a member of the class of compounds known as menthane monoterpenoids. Menthane monoterpenoids are monoterpenoids with a structure based on the o-, m-, or p-menthane backbone. P-menthane consists of the cyclohexane ring with a methyl group and a (2-methyl)-propyl group at the 1 and 4 ring position, respectively. The o- and m- menthanes are much rarer, and presumably arise by alkyl migration of p-menthanes. P-menth-cis-2-en-1-ol is practically insoluble (in water) and an extremely weak acidic compound (based on its pKa). P-menth-cis-2-en-1-ol can be found in a number of food items such as cardamom, rosemary, spearmint, and nutmeg, which makes P-menth-cis-2-en-1-ol a potential biomarker for the consumption of these food products.

   

delta-Cadinol

(8R)-2,5-dimethyl-8-(propan-2-yl)-1,2,3,4,4a,7,8,8a-octahydronaphthalen-2-ol

C15H26O (222.1983546)


Delta-cadinol, also known as delta-cadinol, is a member of the class of compounds known as sesquiterpenoids. Sesquiterpenoids are terpenes with three consecutive isoprene units. Delta-cadinol is practically insoluble (in water) and an extremely weak acidic compound (based on its pKa). Delta-cadinol is a herbal tasting compound and can be found in a number of food items such as cloves, parsley, lemon balm, and common sage, which makes delta-cadinol a potential biomarker for the consumption of these food products. Delta-cadinol, also known as δ-cadinol, is a member of the class of compounds known as sesquiterpenoids. Sesquiterpenoids are terpenes with three consecutive isoprene units. Delta-cadinol is practically insoluble (in water) and an extremely weak acidic compound (based on its pKa). Delta-cadinol is a herbal tasting compound and can be found in a number of food items such as cloves, parsley, lemon balm, and common sage, which makes delta-cadinol a potential biomarker for the consumption of these food products.

   

D-Camphor

1,7,7-Trimethylbicyclo[2.2.1]heptan-2-one

C10H16O (152.12010859999998)


(+)-camphor, also known as formosa camphor or 2-bornanone, is a member of the class of compounds known as bicyclic monoterpenoids. Bicyclic monoterpenoids are monoterpenoids containing exactly 2 rings, which are fused to each other. Thus, (+)-camphor is considered to be an isoprenoid lipid molecule (+)-camphor is practically insoluble (in water) and an extremely weak basic (essentially neutral) compound (based on its pKa). (+)-camphor is a bitter, camphor, and herbal tasting compound and can be found in a number of food items such as sugar apple, sunflower, fennel, and cardamom, which makes (+)-camphor a potential biomarker for the consumption of these food products. C254 - Anti-Infective Agent > C28394 - Topical Anti-Infective Agent D000890 - Anti-Infective Agents Camphor ((±)-Camphor) is a topical anti-infective and anti-pruritic and internally as a stimulant and carminative. However, Camphor is poisonous when ingested. Antiviral, antitussive, and anticancer activities[1]. Camphor is a TRPV3 agonist[2]. Camphor ((±)-Camphor) is a topical anti-infective and anti-pruritic and internally as a stimulant and carminative. However, Camphor is poisonous when ingested. Antiviral, antitussive, and anticancer activities[1]. Camphor is a TRPV3 agonist[2].

   

Cedarwood oil terpenes

2,6,6,8-tetramethyltricyclo[5.3.1.0¹,⁵]undec-8-ene

C15H24 (204.18779039999998)


It is used as a food additive . (-)-Cedrene (α-cedrene) is a sesquiterpene constituent of cedarwood oils, with anti-leukemic, antimicrobial and anti-obesity activities[1]. (-)-Cedrene (α-cedrene) is a sesquiterpene constituent of cedarwood oils, with anti-leukemic, antimicrobial and anti-obesity activities[1]. (-)-Cedrene (α-cedrene) is a sesquiterpene constituent of cedarwood oils, with anti-leukemic, antimicrobial and anti-obesity activities[1]. (-)-Cedrene (α-cedrene) is a sesquiterpene constituent of cedarwood oils, with anti-leukemic, antimicrobial and anti-obesity activities[1].

   

Lepalol

5-(furan-3-yl)-2-methylpent-1-en-3-ol

C10H14O2 (166.09937440000002)


Lepalol is a member of the class of compounds known as heteroaromatic compounds. Heteroaromatic compounds are compounds containing an aromatic ring where a carbon atom is linked to an hetero atom. Lepalol is practically insoluble (in water) and a very weakly acidic compound (based on its pKa). Lepalol can be found in roman camomile, which makes lepalol a potential biomarker for the consumption of this food product.

   

T-Muurolol

(1S,4S,4aR,8aS)-1,6-dimethyl-4-(propan-2-yl)-1,2,3,4,4a,7,8,8a-octahydronaphthalen-1-ol

C15H26O (222.1983546)


T-muurolol, also known as 10-epi-alpha-muurolol or alpha-epi-muurolol, is a member of the class of compounds known as sesquiterpenoids. Sesquiterpenoids are terpenes with three consecutive isoprene units. T-muurolol is practically insoluble (in water) and an extremely weak basic (essentially neutral) compound (based on its pKa). T-muurolol is a herbal, spicy, and weak spice tasting compound found in allspice, lemon balm, and white mustard, which makes T-muurolol a potential biomarker for the consumption of these food products.

   

Tulipinolide

[(6E,10E)-6,10-dimethyl-3-methylidene-2-oxo-3a,4,5,8,9,11a-hexahydrocyclodeca[b]furan-4-yl] acetate

C17H22O4 (290.1518012)


Tulipinolide belongs to germacranolides and derivatives class of compounds. Those are sesquiterpene lactones with a structure based on the germacranolide skeleton, characterized by a gamma lactone fused to a 1,7-dimethylcyclodec-1-ene moiety. Tulipinolide is practically insoluble (in water) and a very weakly acidic compound (based on its pKa). Tulipinolide can be found in sweet bay, which makes tulipinolide a potential biomarker for the consumption of this food product.

   

Benzyl 2-methylbutanoate

Benzyl 2-methylbutanoic acid

C12H16O2 (192.1150236)


Benzyl 2-methylbutanoate is a member of the class of compounds known as benzyloxycarbonyls. Benzyloxycarbonyls are organic compounds containing a carbonyl group substituted with a benzyloxyl group. Benzyl 2-methylbutanoate is practically insoluble (in water) and an extremely weak basic (essentially neutral) compound (based on its pKa). Benzyl 2-methylbutanoate can be found in spearmint, which makes benzyl 2-methylbutanoate a potential biomarker for the consumption of this food product.

   

cedr-8(15)-en-9-ol

(+)-4,5-Bis[hydroxy(diphenyl)methyl]-2-methyl-2-phenyl-1,3-dioxolane

C15H24O (220.18270539999997)


Flavouring compound [Flavornet]

   

2-cis-abscisate

5-(1-hydroxy-2,6,6-trimethyl-4-oxocyclohex-2-en-1-yl)-3-methylpenta-2,4-dienoic acid

C15H19O4 (263.1283274)


2-cis-abscisate is practically insoluble (in water) and a weakly acidic compound (based on its pKa). 2-cis-abscisate can be found in a number of food items such as common wheat, lemon thyme, black raspberry, and acorn, which makes 2-cis-abscisate a potential biomarker for the consumption of these food products.

   

C10:0

Decanoic acid

C10H20O2 (172.14632200000003)


D000890 - Anti-Infective Agents > D000935 - Antifungal Agents Decanoic acid, a component of medium chain triclycerides, is a brain-penetrant and non-competitive inhibitor of AMPA receptor. Decanoic acid has antiseizure effects[1][2][3]. Decanoic acid, a component of medium chain triclycerides, is a brain-penetrant and non-competitive inhibitor of AMPA receptor. Decanoic acid has antiseizure effects[1][2][3]. Decanoic acid, a component of medium chain triclycerides, is a brain-penetrant and non-competitive inhibitor of AMPA receptor. Decanoic acid has antiseizure effects[1][2][3].

   

PHENYLACETIC ACID

2-phenylacetic acid

C8H8O2 (136.0524268)


D009676 - Noxae > D000963 - Antimetabolites D000970 - Antineoplastic Agents

   

Arglabin

3H-OXIRENO(8,8A)AZULENO(4,5-B)FURAN-8(4AH)-ONE, 5,6,6A,7,9A,9B-HEXAHYDRO-1,4A-DIMETHYL-7-METHYLENE-, (4AS-(3AS*,4A.ALPHA.,6A.ALPHA.,9A.BETA.,9B.ALPHA.))-

C15H18O3 (246.1255878)


Arglabin is an organic heterotetracyclic compound and guaianolide sesquiterpene lactone that is acrylic acid which is substituted at position 2 by a 4-hydroxy-3,8-dimethyl-1,3a,4,5,6,7-hexahydroazulen-5-yl group in which the double bond in the 7-membered ring has been epoxidised and in which the hydroxy group and the carboxy group have undergone formal condensation to give the corresponding gamma-lactone. It is found in Artemisia glabella. Arglabin-DMA HCl, the hydrochloride salt of the adduct resulting from the conjugate addition of dimethylamine to the ene-lactone moiety, has been successfully used in Khazakhstan for the treatment of breast, colon, ovarian and lung cancers. It has a role as an antineoplastic agent and a metabolite. It is an organic heterotetracyclic compound, a gamma-lactone, an epoxide and a sesquiterpene lactone. Arglabin is a natural product found in Pentzia eenii and Artemisia myriantha with data available. An organic heterotetracyclic compound and guaianolide sesquiterpene lactone that is acrylic acid which is substituted at position 2 by a 4-hydroxy-3,8-dimethyl-1,3a,4,5,6,7-hexahydroazulen-5-yl group in which the double bond in the 7-membered ring has been epoxidised and in which the hydroxy group and the carboxy group have undergone formal condensation to give the corresponding gamma-lactone. It is found in Artemisia glabella. Arglabin-DMA HCl, the hydrochloride salt of the adduct resulting from the conjugate addition of dimethylamine to the ene-lactone moiety, has been successfully used in Khazakhstan for the treatment of breast, colon, ovarian and lung cancers.

   

Scutellarein

(2S)-2,3-dihydro-5,6,7-trihydroxy-2-(4-hydroxyphenyl)-4H-1-benzopyran-4-one

C15H10O6 (286.047736)


Scutellarein is flavone substituted with hydroxy groups at C-4, -5, -6 and -7. It has a role as a metabolite. It is functionally related to an apigenin. It is a conjugate acid of a scutellarein(1-). Scutellarein is a natural product found in Scoparia dulcis, Artemisia douglasiana, and other organisms with data available. Flavone substituted with hydroxy groups at C-4, -5, -6 and -7. Scutellarein, also known as 6-hydroxyapigenin or 4,5,6,7-tetrahydroxyflavanone, is a member of the class of compounds known as flavones. Flavones are flavonoids with a structure based on the backbone of 2-phenylchromen-4-one (2-phenyl-1-benzopyran-4-one). Thus, scutellarein is considered to be a flavonoid lipid molecule. Scutellarein is practically insoluble (in water) and a very weakly acidic compound (based on its pKa). Scutellarein can be synthesized from apigenin. Scutellarein is also a parent compound for other transformation products, including but not limited to, scutellarin, 4,6-dihydroxy-5,7-dimethoxyflavone, and 6-hydroxy-4,5,7-trimethoxyflavone. Scutellarein is a bitter tasting compound found in mexican oregano and sweet orange, which makes scutellarein a potential biomarker for the consumption of these food products. Scutellarein is a flavone that can be found in Scutellaria lateriflora and other members of the genus Scutellaria, as well as the fern Asplenium belangeri . Scutellarein is a natural flavonoid compound with anti-inflammatory effects. Scutellarein is a natural flavonoid compound with anti-inflammatory effects.

   

Apigenin 7,4'-dimethyl ether

4H-1-Benzopyran-4-one, 5-hydroxy-7-methoxy-2-(4-methoxyphenyl)-

C17H14O5 (298.0841194)


Apigenin 7,4-dimethyl ether, also known as apigenin dimethylether or 4,7-dimethylapigenin, belongs to the class of organic compounds known as 7-O-methylated flavonoids. These are flavonoids with methoxy groups attached to the C7 atom of the flavonoid backbone. Thus, apigenin 7,4-dimethyl ether is considered to be a flavonoid lipid molecule. Apigenin 7,4-dimethyl ether is a very hydrophobic molecule, practically insoluble (in water), and relatively neutral. Outside of the human body, apigenin 7,4-dimethyl ether has been detected, but not quantified in, common sages and sweet basils. This could make apigenin 7,4-dimethyl ether a potential biomarker for the consumption of these foods. BioTransformer predicts that apigenin 7,4-dimethyl ether is a product of 4,5,7-trimethoxyflavone metabolism via an O-dealkylation reaction and catalyzed by CYP2C9 and CYP2C19 enzymes (PMID: 30612223). 4-methylgenkwanin, also known as apigenin dimethylether or 4,7-dimethylapigenin, is a member of the class of compounds known as 7-o-methylated flavonoids. 7-o-methylated flavonoids are flavonoids with methoxy groups attached to the C7 atom of the flavonoid backbone. Thus, 4-methylgenkwanin is considered to be a flavonoid lipid molecule. 4-methylgenkwanin is practically insoluble (in water) and a very weakly acidic compound (based on its pKa). 4-methylgenkwanin can be found in common sage and sweet basil, which makes 4-methylgenkwanin a potential biomarker for the consumption of these food products. Apigenin 7,4-dimethyl ether is a dimethoxyflavone that is the 7,4-dimethyl ether derivative of apigenin. It has a role as a plant metabolite. It is a dimethoxyflavone and a monohydroxyflavone. It is functionally related to an apigenin. Apigenin 7,4-dimethyl ether is a natural product found in Teucrium polium, Calea jamaicensis, and other organisms with data available. A dimethoxyflavone that is the 7,4-dimethyl ether derivative of apigenin. The compound 7,4'-Di-O-methylapigenin may be partly responsible for the reported antifungal activity of C. zeyheri, and may serve as a potential source of lead compounds that can be developed as antifungal phytomedicines.And it also showed inhibition of the drug efflux pumps (with IC50 = 51.64 μg/ml). IC50:51.64 μg/ml(Candida albicans drug efflux pumps)[2] In vitro: The isolated 7,4'-Di-O-methylapigenin was further investigated for its inhibitory activity on ABC drug efflux pumps in C. albicans by monitoring an increase in ciprofloxacin, assessing the level of its accumulation, in response to reserpine. There was a higher accumulation of ciprofloxacin in Candida cells in the presence of 7,4'-Di-O-methylapigenin than with reserpine. The compound 7,4'-Di-O-methylapigenine demonstrated the activity in a dose-dependent manner with IC50 value of 51.64 μg/ml. These results support those obtained from synergism assays where by the underlying synergistic antifungal mechanisms could be due to blockage of ABC efflux pumps and increasing the susceptibility of Candida to miconazole.[2] In vivo: In searching for natural products as potential anti-inflammatory agents, 7,4'-Di-O-methylapigenin wasn't evaluated in vivo for its ability to inhibit acute inflammation.[1] The compound 7,4'-Di-O-methylapigenin may be partly responsible for the reported antifungal activity of C. zeyheri, and may serve as a potential source of lead compounds that can be developed as antifungal phytomedicines.And it also showed inhibition of the drug efflux pumps (with IC50 = 51.64 μg/ml). IC50:51.64 μg/ml(Candida albicans drug efflux pumps)[2] In vitro: The isolated 7,4'-Di-O-methylapigenin was further investigated for its inhibitory activity on ABC drug efflux pumps in C. albicans by monitoring an increase in ciprofloxacin, assessing the level of its accumulation, in response to reserpine. There was a higher accumulation of ciprofloxacin in Candida cells in the presence of 7,4'-Di-O-methylapigenin than with reserpine. The compound 7,4'-Di-O-methylapigenine demonstrated the activity in a dose-dependent manner with IC50 value of 51.64 μg/ml. These results support those obtained from synergism assays where by the underlying synergistic antifungal mechanisms could be due to blockage of ABC efflux pumps and increasing the susceptibility of Candida to miconazole.[2] In vivo: In searching for natural products as potential anti-inflammatory agents, 7,4'-Di-O-methylapigenin wasn't evaluated in vivo for its ability to inhibit acute inflammation.[1]

   

Velutin

4H-1-Benzopyran-4-one, 5-hydroxy-2-(4-hydroxy-3-methyoxyphenyl)-7-methoxy-

C17H14O6 (314.0790344)


Velutin is a dimethoxyflavone that is luteolin in which the hydroxy groups at positions 7 and 3 are replaced by methoxy groups. It has a role as an anti-inflammatory agent, a plant metabolite, a melanin synthesis inhibitor, an antibacterial agent, an antioxidant and an anti-allergic agent. It is a dimethoxyflavone and a dihydroxyflavone. It is functionally related to a 4,5,7-trihydroxy-3-methoxyflavone. Velutin is a natural product found in Avicennia officinalis, Lantana montevidensis, and other organisms with data available. See also: Acai (part of). A dimethoxyflavone that is luteolin in which the hydroxy groups at positions 7 and 3 are replaced by methoxy groups. [Raw Data] CB095_Velutin_neg_50eV_000026.txt [Raw Data] CB095_Velutin_neg_40eV_000026.txt [Raw Data] CB095_Velutin_neg_30eV_000026.txt [Raw Data] CB095_Velutin_neg_20eV_000026.txt [Raw Data] CB095_Velutin_neg_10eV_000026.txt [Raw Data] CB095_Velutin_pos_50eV_CB000040.txt [Raw Data] CB095_Velutin_pos_40eV_CB000040.txt [Raw Data] CB095_Velutin_pos_30eV_CB000040.txt [Raw Data] CB095_Velutin_pos_20eV_CB000040.txt [Raw Data] CB095_Velutin_pos_10eV_CB000040.txt Velutin is an aglycone extracted from Flammulina velutipes, with inhibitory activity against melanin biosynthesis. Velutin reduces osteoclast differentiation and down-regulates HIF-1α through the NF-κB pathway[1][2]. Velutin is an aglycone extracted from Flammulina velutipes, with inhibitory activity against melanin biosynthesis. Velutin reduces osteoclast differentiation and down-regulates HIF-1α through the NF-κB pathway[1][2]. Velutin is an aglycone extracted from Flammulina velutipes, with inhibitory activity against melanin biosynthesis. Velutin reduces osteoclast differentiation and down-regulates HIF-1α through the NF-κB pathway[1][2].

   

sesamin

1,3-Benzodioxole, 5,5-(tetrahydro-1H,3H-furo(3,4-c)furan-1,4-diyl)bis-, (1S-(1.alpha.,3a.alpha.,4.alpha.,6a.alpha.))-

C20H18O6 (354.1103328)


D057847 - Lipid Regulating Agents > D000960 - Hypolipidemic Agents > D000924 - Anticholesteremic Agents D002317 - Cardiovascular Agents > D000959 - Antihypertensive Agents D020011 - Protective Agents > D000975 - Antioxidants D009676 - Noxae > D000963 - Antimetabolites relative retention time with respect to 9-anthracene Carboxylic Acid is 1.233 relative retention time with respect to 9-anthracene Carboxylic Acid is 1.236 Asarinin is a natural product found in Piper mullesua, Machilus thunbergii, and other organisms with data available. (-)-Asarinin is a natural product found in Zanthoxylum austrosinense, Horsfieldia irya, and other organisms with data available. (-)-Asarinin is a extract lignan from Asarum sieboldii Miq., mainly produced in roots of this herb[1]. (-)-Asarinin is a extract lignan from Asarum sieboldii Miq., mainly produced in roots of this herb[1]. (-)-Asarinin is a extract lignan from Asarum sieboldii Miq., mainly produced in roots of this herb[1]. (-)-Asarinin is a extract lignan from Asarum sieboldii Miq., mainly produced in roots of this herb[1]. Sesamin, abundant lignan found in sesame oil, is a potent and selective delta 5 desaturase inhibitor in polyunsaturated fatty acid biosynthesis. Sesamin exerts effective neuroprotection against cerbral ischemia[1][2]. Sesamin, abundant lignan found in sesame oil, is a potent and selective delta 5 desaturase inhibitor in polyunsaturated fatty acid biosynthesis. Sesamin exerts effective neuroprotection against cerbral ischemia[1][2].

   

Quercimeritrin

2-(3,4-dihydroxyphenyl)-3,5-dihydroxy-7-(((2S,3R,4S,5S,6R)-3,4,5-trihydroxy-6-(hydroxymethyl)tetrahydro-2H-pyran-2-yl)oxy)-4H-chromen-4-one

C21H20O12 (464.09547200000003)


Quercetin 7-O-beta-D-glucoside is a quercetin O-glucoside in which a glucosyl residue is attached at position 7 of quercetin via a beta-glycosidic linkage. It has a role as an antioxidant and a metabolite. It is a beta-D-glucoside, a monosaccharide derivative, a member of flavonols, a tetrahydroxyflavone and a quercetin O-glucoside. Quercimeritrin is a natural product found in Salix atrocinerea, Dendroviguiera sphaerocephala, and other organisms with data available. See also: Chamomile (part of). Quercimeritrin, isolated from the leaves of Ixeridium dentatum, exhibits significant amylase activity[1]. Quercimeritrin, isolated from the leaves of Ixeridium dentatum, exhibits significant amylase activity[1].

   
   

Occidol

(R)-1,2,3,4-Tetrahydro-a,a,5,8-tetramethyl-2-naphthalenemethanol

C15H22O (218.1670562)


   

Dihydroartemisinic acid

(-)-dihydroartemisinic acid

C15H24O2 (236.1776204)


Dihydroartemisinic acid (Dihydroqinghao acid) is a biosynthetic precursor to the antimalarial agent Artemisinin[1]. Dihydroartemisinic acid (Dihydroqinghao acid) is a biosynthetic precursor to the antimalarial agent Artemisinin[1].

   

Ascorbic acid

(5R)-5-[(1S)-1,2-dihydroxyethyl]-3,4-dihydroxy-2,5-dihydrofuran-2-one

C6H8O6 (176.0320868)


Ascorbic acid is found naturally in citrus fruits and many vegetables and is an essential nutrient in human diets. It is necessary to maintain connective tissue and bone. The biologically active form of ascorbic acid is vitamin C. Vitamin C is a water soluble vitamin. Primates (including humans) and a few other species in all divisions of the animal kingdom, notably the guinea pig, have lost the ability to synthesize ascorbic acid and must obtain it in their food. Vitamin C functions as a reducing agent and coenzyme in several metabolic pathways. Vitamin C is considered an antioxidant (PubChem). Ascorbic acid is an electron donor for enzymes involved in collagen hydroxylation, biosynthesis of carnitine and norepinephrine, tyrosine metabolism, and amidation of peptide hormones. Ascrobic acid (vitamin C) deficiency causes scurvy. The amount of vitamin C necessary to prevent scurvy may not be adequate to maintain optimal health. The ability of vitamin C to donate electrons also makes it a potent water-soluble antioxidant that readily scavenges free radicals such as molecular oxygen, superoxide, hydroxyl radical, and hypochlorous acid. In this setting, several mechanisms could account for a link between vitamin C and heart disease. One is the relation between LDL oxidation and vitamins C and E. Vitamin C in vitro can recycle vitamin E, which can donate electrons to prevent LDL oxidation in vitro. As the lipid-phase vitamin E is oxidized, it can be regenerated by aqueous vitamin C. Other possibilities are that vitamin C could decrease cholesterol by mechanisms not well characterized, or could improve vasodilatation and vascular reactivity, perhaps by decreasing the interactions of nitric oxide with oxidants (PMID: 10799361). Moreover, ascorbic acid is found to be associated with hyperoxalemia, which is an inborn error of metabolism. Ascorbic acid is also a microbial metabolite produced by Ketogulonicigenium (PMID: 15785002). Occurs widely in animals and plants. Good sources are citrus fruits and hip berries. Isolated from ox adrenal cortex, lemons and paprika. Production industrially on a large scale from glucose. Vitamin (antiscorbutic), antioxidant, nutrient, preservative consistency enhancer. It is used to reduce discoloration, mainly browning caused by polyphenol oxidase, in fruit and vegetable products. It is used to enhance colour formn. and to reduced the formn. of nitrosamines in meat products. It is used synergistically with Sulfur dioxide HVF10-P in wine and beer as a perservative. Assists formn. of the gluten network in bread making, thus enhancing bread volume. L-Ascorbic acid is found in many foods, some of which are cabbage, hyssop, ginseng, and pancake. L-Ascorbic acid (L-Ascorbate), an electron donor, is an endogenous antioxidant agent. L-Ascorbic acid inhibits selectively Cav3.2 channels with an IC50 of 6.5 μM. L-Ascorbic acid is also a collagen deposition enhancer and an elastogenesis inhibitor[1][2][3]. L-Ascorbic acid exhibits anti-cancer effects through the generation of reactive oxygen species (ROS) and selective damage to cancer cells[4]. L-Ascorbic acid (L-Ascorbate), an electron donor, is an endogenous antioxidant agent. L-Ascorbic acid inhibits selectively Cav3.2 channels with an IC50 of 6.5 μM. L-Ascorbic acid is also a collagen deposition enhancer and an elastogenesis inhibitor[1][2][3]. L-Ascorbic acid exhibits anti-cancer effects through the generation of reactive oxygen species (ROS) and selective damage to cancer cells[4].

   

Ethyl oleate

9Z-octadecenoic acid, ethyl ester

C20H38O2 (310.28716479999997)


Ethyl Oleate is a fatty acid ester formed by the condensation of oleic acid and ethanol. Ethyl oleate is the liquid lipid component in nanostructured lipid carriers (NLCs). NLC is a promising vehicle for oral trans-Ferulic acid (TFA) administration[1]. Ethyl Oleate is a fatty acid ester formed by the condensation of oleic acid and ethanol. Ethyl oleate is the liquid lipid component in nanostructured lipid carriers (NLCs). NLC is a promising vehicle for oral trans-Ferulic acid (TFA) administration[1].

   

alpha-Bergamotene

alpha-Bergamotene

C15H24 (204.18779039999998)


A sesquiterpene consisting of a bicyclo[3.1.1]hept-2-ene skeleton substituted at positions 2 and 6 by methyl groups and at position 6 by a 4-methylpent-3-en-1-yl group.

   

physcion

9,10-Anthracenedione, 1,8-dihydroxy-3-methoxy-6-methyl- (9CI)

C16H12O5 (284.0684702)


Physcion, also known as emodin monomethyl ether or parienin, is a member of the class of compounds known as anthraquinones. Anthraquinones are organic compounds containing either anthracene-9,10-quinone, 1,4-anthraquinone, or 1,2-anthraquinone. Physcion is practically insoluble (in water) and a very weakly acidic compound (based on its pKa). Physcion can be synthesized from 2-methylanthraquinone. Physcion can also be synthesized into torososide B and physcion 8-gentiobioside. Physcion can be found in common sage, garden rhubarb, and sorrel, which makes physcion a potential biomarker for the consumption of these food products. Physcion has also been shown to protect lichens against UV-B light, at high altitudes in Alpine regions. The UV-B light stimulates production of parietin and the parietin protects the lichens from damage. Lichens in arctic regions such as Svarlbard retain this capability though they do not encounter damaging levels of UV-B, a capability that could help protect the lichens in case of Ozone layer thinning .

   

1,2,3-TRIMETHYLBENZENE

1,2,3-Trimethyl benzene

C9H12 (120.09389519999999)


A trimethylbenzene carrying methyl groups at positions 1, 2 and 3. It has been found in Centaurium erythraea.

   

8-Hydroxygeraniol

8-Hydroxygeraniol

C10H18O2 (170.1306728)


   

Vitexin

5,7-dihydroxy-2-(4-hydroxyphenyl)-8-[(2S,3R,4R,5S,6R)-3,4,5-trihydroxy-6-(hydroxymethyl)tetrahydropyran-2-yl]chromen-4-one

C21H20O10 (432.105642)


Vitexin is a c-glycosylated flavone, and is found in various medicinal plants species such as Trigonella foenum-graecum Linn. Vitexin has a wide range of pharmacological effects, including anti-oxidant, anti-cancer, anti-inflammatory, anti-hyperalgesic, and neuroprotective effects[1][2]. Vitexin is a c-glycosylated flavone, and is found in various medicinal plants species such as Trigonella foenum-graecum Linn. Vitexin has a wide range of pharmacological effects, including anti-oxidant, anti-cancer, anti-inflammatory, anti-hyperalgesic, and neuroprotective effects[1][2].

   

Luteolin

4H-1-Benzopyran-4-one, 2-(3,4-dihydroxyphenyl)-5,7-dihydroxy- (9CI)

C15H10O6 (286.047736)


Annotation level-1 relative retention time with respect to 9-anthracene Carboxylic Acid is 0.976 relative retention time with respect to 9-anthracene Carboxylic Acid is 0.975 relative retention time with respect to 9-anthracene Carboxylic Acid is 0.968 relative retention time with respect to 9-anthracene Carboxylic Acid is 0.971 Luteolin (Luteoline), a flavanoid compound, is a potent Nrf2 inhibitor. Luteolin has anti-inflammatory, anti-cancer properties, including the induction of apoptosis and cell cycle arrest, and the inhibition of metastasis and angiogenesis, in several cancer cell lines, including human non-small lung cancer cells[1][2][3]. Luteolin (Luteoline), a flavanoid compound, is a potent Nrf2 inhibitor. Luteolin has anti-inflammatory, anti-cancer properties, including the induction of apoptosis and cell cycle arrest, and the inhibition of metastasis and angiogenesis, in several cancer cell lines, including human non-small lung cancer cells[1][2][3].

   

Genkwanin

4H-1-Benzopyran-4-one, 5-hydroxy-2-(4-hydroxyphenyl)-7-methoxy-

C16H12O5 (284.0684702)


Genkwanin is a major non-glycosylated flavonoid with anti-flammatory activities. Genkwanin is a major non-glycosylated flavonoid with anti-flammatory activities.

   

1-(5-Ethenyl-5-methyloxolan-2-yl)ethanone

1-(5-Ethenyl-5-methyloxolan-2-yl)ethanone

C9H14O2 (154.09937440000002)


   

Spathulenol

Spathulenol

C15H24O (220.18270539999997)


Constituent of Salvia sclarea (clary sage). Spathulenol is found in many foods, some of which are tarragon, spearmint, common sage, and tea.

   

Lupenone

(1R,3aR,4S,5aR,5bR,7aR,11aR,11bR,13aR,13bR)-1-Isopropenyl-3a,5a,5b,8,8,11a-hexamethyl-eicosahydro-cyclopenta[a]chrysen-9-one

C30H48O (424.37049579999996)


Lupenone, isolated from Musa basjoo, belongs to lupane type triterpenoids. Lupenone shows various pharmacological activities including anti-inflammatory, anti-virus, anti-diabetes, anti-cancer, improving Chagas disease without major toxicity[1][2]. Lupenone is an orally active lupine-type triterpenoid that can be isolated from Musa basjoo. Lupenone Lupenone plays a role through the PI3K/Akt/mTOR and NF-κB signaling pathways. Lupenone has anti-inflammatory, antiviral, antidiabetic and anticancer activities[1][2][3]. Lupenone, isolated from Musa basjoo, belongs to lupane type triterpenoids. Lupenone shows various pharmacological activities including anti-inflammatory, anti-virus, anti-diabetes, anti-cancer, improving Chagas disease without major toxicity[1][2].

   

bicyclogermacrene

bicyclogermacrene

C15H24 (204.18779039999998)


A sesquiterpene derived from germacrane by dehydrogenation across the C(1)-C(10) and C(4)-C(5) bonds and cyclisation across the C(8)-C(9) bond.

   
   

Costunolide

NCGC00381718-02_C15H20O2_Cyclodeca[b]furan-2(3H)-one, 3a,4,5,8,9,11a-hexahydro-6,10-dimethyl-3-methylene-, (3aS,6E,10E,11aR)-

C15H20O2 (232.14632200000003)


Costunolide is a germacranolide with anthelminthic, antiparasitic and antiviral activities. It has a role as an anthelminthic drug, an antiinfective agent, an antineoplastic agent, an antiparasitic agent, an antiviral drug and a metabolite. It is a germacranolide and a heterobicyclic compound. (+)-Costunolide is a natural product found in Magnolia garrettii, Critonia morifolia, and other organisms with data available. D000890 - Anti-Infective Agents > D000977 - Antiparasitic Agents > D000871 - Anthelmintics A germacranolide with anthelminthic, antiparasitic and antiviral activities. D000890 - Anti-Infective Agents > D000998 - Antiviral Agents D000970 - Antineoplastic Agents D004791 - Enzyme Inhibitors Costunolide ((+)-Costunolide) is a naturally occurring sesquiterpene lactone, with antioxidative, anti-inflammatory, antiallergic, bone remodeling, neuroprotective, hair growth promoting, anticancer, and antidiabetic properties. Costunolide can induce cell cycle arrest and apoptosis on breast cancer cells[1][2][3]. Costunolide ((+)-Costunolide) is a naturally occurring sesquiterpene lactone, with antioxidative, anti-inflammatory, antiallergic, bone remodeling, neuroprotective, hair growth promoting, anticancer, and antidiabetic properties. Costunolide can induce cell cycle arrest and apoptosis on breast cancer cells[1][2][3].

   
   

Carene

(+)-3-delta-Carene, primary pharmaceutical reference standard

C10H16 (136.1251936)


(+)-car-3-ene is a car-3-ene (3,7,7-trimethylbicyclo[4.1.0]hept-3-ene) that has S configuration at position 1 and R configuration at position 6. It is an enantiomer of a (-)-car-3-ene. (+)-3-Carene is a natural product found in Molopospermum peloponnesiacum, Kippistia suaedifolia, and other organisms with data available.

   

β-Bisabolene

(-)-beta-bisabolene;(S)-(-)-6-methyl-2-(4-methyl-3-cyclohexen-1-yl)-1,5-heptadiene;(S)-1-methyl-4-(5-methyl-1-methylene-4-hexenyl)cyclohexene

C15H24 (204.18779039999998)


(S)-beta-bisabolene is a beta-bisabolene which has (1S)-configuration. It is an enantiomer of a (R)-beta-bisabolene. beta-Bisabolene is a natural product found in Rattus rattus, Eupatorium cannabinum, and other organisms with data available. A beta-bisabolene which has (1S)-configuration. β-Bisabolene is a?sesquiterpene isolated from?opoponax (Commiphora guidotti). β-Bisabolene, an anti-cancer agent, can be used for the study of breast cancer[1]. β-Bisabolene is a?sesquiterpene isolated from?opoponax (Commiphora guidotti). β-Bisabolene, an anti-cancer agent, can be used for the study of breast cancer[1].

   

13-Kodda

(9E,11E)-13-oxooctadeca-9,11-dienoic acid

C18H30O3 (294.21948299999997)


13-oxo-9E,11E-ODE is an oxooctadecadienoic acid that consists of 9E,11E-octadecadienoic acid with the oxo substituent located at position 13. It has a role as a metabolite. It is an oxo fatty acid and a 13-oxo-9,11-octadecadienoic acid. 13-OxoODE is a natural product found in Carthamus oxyacanthus, Artemisia argyi, and Glycine max with data available.

   

13-KODE

(9Z,11E)-13-Oxooctadeca-9,11-dienoic acid

C18H30O3 (294.21948299999997)


   

Honokiol

InChI=1\C18H18O2\c1-3-5-13-7-9-18(20)16(11-13)14-8-10-17(19)15(12-14)6-4-2\h3-4,7-12,19-20H,1-2,5-6H

C18H18O2 (266.1306728)


D002492 - Central Nervous System Depressants > D014149 - Tranquilizing Agents > D014151 - Anti-Anxiety Agents D002491 - Central Nervous System Agents > D011619 - Psychotropic Drugs > D014149 - Tranquilizing Agents D002491 - Central Nervous System Agents > D002492 - Central Nervous System Depressants D002317 - Cardiovascular Agents > D000889 - Anti-Arrhythmia Agents D005765 - Gastrointestinal Agents D000890 - Anti-Infective Agents D000970 - Antineoplastic Agents D018926 - Anti-Allergic Agents D004791 - Enzyme Inhibitors Annotation level-1 Honokiol is a bioactive, biphenolic phytochemical that possesses potent antioxidative, anti-inflammatory, antiangiogenic, and anticancer activities by targeting a variety of signaling molecules. It inhibits the activation of Akt. Honokiol can readily cross the blood brain barrier[1][2][3][4]. Honokiol is a bioactive, biphenolic phytochemical that possesses potent antioxidative, anti-inflammatory, antiangiogenic, and anticancer activities by targeting a variety of signaling molecules. It inhibits the activation of Akt. Honokiol can readily cross the blood brain barrier[1][2][3][4]. Honokiol is a bioactive, biphenolic phytochemical that possesses potent antioxidative, anti-inflammatory, antiangiogenic, and anticancer activities by targeting a variety of signaling molecules. It inhibits the activation of Akt. Honokiol can readily cross the blood brain barrier[1][2][3][4].

   

syringin

Eleutheroside B

C17H24O9 (372.14202539999997)


Syringin, also known as eleutheroside b or beta-terpineol, is a member of the class of compounds known as phenolic glycosides. Phenolic glycosides are organic compounds containing a phenolic structure attached to a glycosyl moiety. Some examples of phenolic structures include lignans, and flavonoids. Among the sugar units found in natural glycosides are D-glucose, L-Fructose, and L rhamnose. Syringin is slightly soluble (in water) and a very weakly acidic compound (based on its pKa). Syringin can be found in caraway, fennel, and lemon, which makes syringin a potential biomarker for the consumption of these food products. Syringin is a natural chemical compound first isolated from the bark of lilac (Syringa vulgaris) by Meillet in 1841. It has since been found to be distributed widely throughout many types of plants. It is also called eleutheroside B, and is found in Eleutherococcus senticosus (Siberian ginseng). It is also found in dandelion coffee . Syringin is a main bioactive phenolic glycoside in Acanthopanax senticosus, with anti-osteoporosis activity. Syringin prevents cardiac hypertrophy induced by pressure overload through the attenuation of autophagy[1][2]. Syringin is a main bioactive phenolic glycoside in Acanthopanax senticosus, with anti-osteoporosis activity. Syringin prevents cardiac hypertrophy induced by pressure overload through the attenuation of autophagy[1][2].

   

Hesperetin

4H-1-Benzopyran-4-one, 2,3-dihydro-5,7-dihydroxy-2-(3-hydroxy-4-methoxyphenyl)-, (S)- (9CI)

C16H14O6 (302.0790344)


Annotation level-1 relative retention time with respect to 9-anthracene Carboxylic Acid is 0.958 relative retention time with respect to 9-anthracene Carboxylic Acid is 0.957 relative retention time with respect to 9-anthracene Carboxylic Acid is 0.955 (Rac)-Hesperetin is the racemate of Hesperetin. Hesperetin is a natural flavanone, and acts as a potent and broad-spectrum inhibitor against human UGT activity. Hesperetin induces apoptosis via p38 MAPK activation. (Rac)-Hesperetin is the racemate of Hesperetin. Hesperetin is a natural flavanone, and acts as a potent and broad-spectrum inhibitor against human UGT activity. Hesperetin induces apoptosis via p38 MAPK activation. Hesperetin is a natural flavanone, and acts as a potent and broad-spectrum inhibitor against human UGT activity. Hesperetin regulates apoptosis. Hesperetin is a natural flavanone, and acts as a potent and broad-spectrum inhibitor against human UGT activity. Hesperetin regulates apoptosis.

   

PHENYLACETIC ACID

2-phenylacetic acid

C8H8O2 (136.0524268)


A monocarboxylic acid that is toluene in which one of the hydrogens of the methyl group has been replaced by a carboxy group. D009676 - Noxae > D000963 - Antimetabolites D000970 - Antineoplastic Agents

   

Ferulic acid

4-hydroxy-3-methoxycinnamic acid

C10H10O4 (194.057906)


(E)-Ferulic acid is a isomer of Ferulic acid which is an aromatic compound, abundant in plant cell walls. (E)-Ferulic acid causes the phosphorylation of β-catenin, resulting in proteasomal degradation of β-catenin and increases the expression of pro-apoptotic factor Bax and decreases the expression of pro-survival factor survivin. (E)-Ferulic acid shows a potent ability to remove reactive oxygen species (ROS) and inhibits lipid peroxidation. (E)-Ferulic acid exerts both anti-proliferation and anti-migration effects in the human lung cancer cell line H1299[1]. (E)-Ferulic acid is a isomer of Ferulic acid which is an aromatic compound, abundant in plant cell walls. (E)-Ferulic acid causes the phosphorylation of β-catenin, resulting in proteasomal degradation of β-catenin and increases the expression of pro-apoptotic factor Bax and decreases the expression of pro-survival factor survivin. (E)-Ferulic acid shows a potent ability to remove reactive oxygen species (ROS) and inhibits lipid peroxidation. (E)-Ferulic acid exerts both anti-proliferation and anti-migration effects in the human lung cancer cell line H1299[1]. Ferulic acid is a novel fibroblast growth factor receptor 1 (FGFR1) inhibitor with IC50s of 3.78 and 12.5 μM for FGFR1 and FGFR2, respectively. Ferulic acid is a novel fibroblast growth factor receptor 1 (FGFR1) inhibitor with IC50s of 3.78 and 12.5 μM for FGFR1 and FGFR2, respectively.

   

L-Leucine

L-Leucine, (Cell Culture Reagent, Crystalline)

C6H13NO2 (131.0946238)


Flavouring ingredient; dietary supplement, nutrient. L-Leucine is found in many foods, some of which are lettuce, common bean, pacific herring, and kefir. MS2 deconvoluted using MS2Dec from all ion fragmentation data, MetaboLights identifier MTBLS1040; ROHFNLRQFUQHCH-YFKPBYRVSA-N_STSL_0102_Leucine_8000fmol_180425_S2_LC02_MS02_19; Spectrum acquired as described in Naz et al 2017 PMID 28641411. Preparation and submission to MassBank of North America by Chaleckis R. and Tada I. MS2 deconvoluted using CorrDec from all ion fragmentation data, MetaboLights identifier MTBLS1040; Spectrum acquired as described in Naz et al 2017 PMID 28641411. Preparation and submission to MassBank of North America by Chaleckis R. and Tada I. L-Leucine is an essential branched-chain amino acid (BCAA), which activates the mTOR signaling pathway[1]. L-Leucine is an essential branched-chain amino acid (BCAA), which activates the mTOR signaling pathway[1]. L-Leucine is an essential branched-chain amino acid (BCAA), which activates the mTOR signaling pathway[1]. L-Leucine is an essential branched-chain amino acid (BCAA), which activates the mTOR signaling pathway[1].

   

Vanillic Acid

Vanillic acid hexoside

C8H8O4 (168.0422568)


Vanillic acid is a flavoring agent found in edible plants and fruits, also found in Angelica sinensis. Vanillic acid inhibits NF-κB activation. Anti-inflammatory, antibacterial, and chemopreventive effects[1]. Vanillic acid is a flavoring agent found in edible plants and fruits, also found in Angelica sinensis. Vanillic acid inhibits NF-κB activation. Anti-inflammatory, antibacterial, and chemopreventive effects[1].

   

Isoliquiritigenin

Isoliquiritigenin

C15H12O4 (256.0735552)


Isoliquiritigenin is an anti-tumor flavonoid from the root of Glycyrrhiza uralensis Fisch., which inhibits aldose reductase with an IC50 of 320 nM. Isoliquiritigenin is a potent inhibitor of influenza virus replication with an EC50 of 24.7 μM. Isoliquiritigenin is an anti-tumor flavonoid from the root of Glycyrrhiza uralensis Fisch., which inhibits aldose reductase with an IC50 of 320 nM. Isoliquiritigenin is a potent inhibitor of influenza virus replication with an EC50 of 24.7 μM.

   

Decanoic acid

Decanoic acid

C10H20O2 (172.14632200000003)


Decanoic acid. CAS Common Chemistry. CAS, a division of the American Chemical Society, n.d. https://commonchemistry.cas.org/detail?cas_rn=334-48-5 (retrieved 2024-06-29) (CAS RN: 334-48-5). Licensed under the Attribution-Noncommercial 4.0 International License (CC BY-NC 4.0). Decanoic acid, a component of medium chain triclycerides, is a brain-penetrant and non-competitive inhibitor of AMPA receptor. Decanoic acid has antiseizure effects[1][2][3]. Decanoic acid, a component of medium chain triclycerides, is a brain-penetrant and non-competitive inhibitor of AMPA receptor. Decanoic acid has antiseizure effects[1][2][3]. Decanoic acid, a component of medium chain triclycerides, is a brain-penetrant and non-competitive inhibitor of AMPA receptor. Decanoic acid has antiseizure effects[1][2][3].

   

stearic acid

stearic acid

C18H36O2 (284.2715156)


Stearic acid is a long chain dietary saturated fatty acid which exists in many animal and vegetable fats and oils. Stearic acid is a long chain dietary saturated fatty acid which exists in many animal and vegetable fats and oils.

   

5,7-dihydroxy-2-(4-hydroxyphenyl)-8-[3,4,5-trihydroxy-6-(hydroxymethyl)oxan-2-yl]-6-(3,4,5-trihydroxyoxan-2-yl)chromen-4-one

NCGC00169650-03!5,7-dihydroxy-2-(4-hydroxyphenyl)-8-[3,4,5-trihydroxy-6-(hydroxymethyl)oxan-2-yl]-6-(3,4,5-trihydroxyoxan-2-yl)chromen-4-one

C26H28O14 (564.1478988)


   

Caprylic acid

Caprylic acid

C8H16O2 (144.1150236)


Octanoic acid (Caprylic acid) is an oily liquid with a slightly unpleasant rancid taste and used commercially in the production of esters used in perfumery and also in the manufacture of dyes. Octanoic acid (Caprylic acid) is an oily liquid with a slightly unpleasant rancid taste and used commercially in the production of esters used in perfumery and also in the manufacture of dyes.

   

Capric acid

Decanoic acid

C10H20O2 (172.14632200000003)


D000890 - Anti-Infective Agents > D000935 - Antifungal Agents A C10, straight-chain saturated fatty acid. Decanoic acid, a component of medium chain triclycerides, is a brain-penetrant and non-competitive inhibitor of AMPA receptor. Decanoic acid has antiseizure effects[1][2][3]. Decanoic acid, a component of medium chain triclycerides, is a brain-penetrant and non-competitive inhibitor of AMPA receptor. Decanoic acid has antiseizure effects[1][2][3]. Decanoic acid, a component of medium chain triclycerides, is a brain-penetrant and non-competitive inhibitor of AMPA receptor. Decanoic acid has antiseizure effects[1][2][3].

   

Lauric acid

Dodecanoic acid

C12H24O2 (200.1776204)


Lauric acid, systematically dodecanoic acid, is a saturated fatty acid with a 12-carbon atom chain, thus having many properties of medium-chain fatty acids.[6] It is a bright white, powdery solid with a faint odor of bay oil or soap. The salts and esters of lauric acid are known as laurates. Lauric acid, as a component of triglycerides, comprises about half of the fatty-acid content in coconut milk, coconut oil, laurel oil, and palm kernel oil (not to be confused with palm oil),[10][11] Otherwise, it is relatively uncommon. It is also found in human breast milk (6.2\\\\% of total fat), cow's milk (2.9\\\\%), and goat's milk (3.1\\\\%). Lauric acid. CAS Common Chemistry. CAS, a division of the American Chemical Society, n.d. https://commonchemistry.cas.org/detail?cas_rn=143-07-7 (retrieved 2024-07-01) (CAS RN: 143-07-7). Licensed under the Attribution-Noncommercial 4.0 International License (CC BY-NC 4.0). Lauric acid is a middle chain-free fatty acid with strong bactericidal properties. The EC50s for P. acnes, S.aureus, S. epidermidis, are 2, 6, 4 μg/mL, respectively. Lauric acid is a middle chain-free fatty acid with strong bactericidal properties. The EC50s for P. acnes, S.aureus, S. epidermidis, are 2, 6, 4 μg/mL, respectively.

   

nerol

(2Z)-3,7-Dimethyl-2,6-octadien-1-ol

C10H18O (154.1357578)


Nerol is a constituent of neroli oil. Nerol Nerol triggers mitochondrial dysfunction and induces apoptosis via elevation of Ca2+ and ROS. Antifungal activity[1][2]. Nerol is a constituent of neroli oil. Nerol Nerol triggers mitochondrial dysfunction and induces apoptosis via elevation of Ca2+ and ROS. Antifungal activity[1][2]. Nerol is a constituent of neroli oil. Nerol Nerol triggers mitochondrial dysfunction and induces apoptosis via elevation of Ca2+ and ROS. Antifungal activity[1][2].

   

phloroglucinol

phloroglucinol

C6H6O3 (126.0316926)


A - Alimentary tract and metabolism > A03 - Drugs for functional gastrointestinal disorders > A03A - Drugs for functional gastrointestinal disorders D019995 - Laboratory Chemicals > D007202 - Indicators and Reagents A benzenetriol with hydroxy groups at position 1, 3 and 5.

   
   

5,7-dihydroxy-2-(4-hydroxyphenyl)-8-[3,4,5-trihydroxy-6-(hydroxymethyl)oxan-2-yl]-6-(3,4,5-trihydroxyoxan-2-yl)chromen-4-one

5,7-dihydroxy-2-(4-hydroxyphenyl)-8-[3,4,5-trihydroxy-6-(hydroxymethyl)oxan-2-yl]-6-(3,4,5-trihydroxyoxan-2-yl)chromen-4-one

C26H28O14 (564.1478988)


   

cis-cinnamic acid

cis-cinnamic acid

C9H8O2 (148.0524268)


The Z (cis) isomer of cinnamic acid Annotation level-1

   

coniferaldehyde

coniferaldehyde

C10H10O3 (178.062991)


CONFIDENCE Reference Standard (Level 1); INTERNAL_ID 13

   

Vulgarin

Vulgarin

C15H20O4 (264.13615200000004)


Origin: Plant; SubCategory_DNP: Sesquiterpenoids

   

Octadecanoic acid

Octadecanoic acid

C18H36O2 (284.2715156)


A C18 straight-chain saturated fatty acid component of many animal and vegetable lipids. As well as in the diet, it is used in hardening soaps, softening plastics and in making cosmetics, candles and plastics.

   

Dodecanoic acid

Dodecanoic acid

C12H24O2 (200.1776204)


A straight-chain, twelve-carbon medium-chain saturated fatty acid with strong bactericidal properties; the main fatty acid in coconut oil and palm kernel oil.

   

Vanillyl alcohol

4-(Hydroxymethyl)-2-methoxyphenol

C8H10O3 (154.062991)


Vanillyl alcohol (p-(Hydroxymethyl)guaiacol), derived from vanillin, is a phenolic alcohol and is used as a flavoring agent in foods and beverages[1]. Vanillyl alcohol (p-(Hydroxymethyl)guaiacol), derived from vanillin, is a phenolic alcohol and is used as a flavoring agent in foods and beverages[1].

   

caryophyllene

(-)-beta-Caryophyllene

C15H24 (204.18779039999998)


A beta-caryophyllene in which the stereocentre adjacent to the exocyclic double bond has S configuration while the remaining stereocentre has R configuration. It is the most commonly occurring form of beta-caryophyllene, occurring in many essential oils, particularly oil of cloves. D018373 - Peripheral Nervous System Agents > D018689 - Sensory System Agents D002491 - Central Nervous System Agents > D000700 - Analgesics D000893 - Anti-Inflammatory Agents D018501 - Antirheumatic Agents β-Caryophyllene is a CB2 receptor agonist. β-Caryophyllene is a CB2 receptor agonist.

   

(9E,11E)-13-oxooctadeca-9,11-dienoic acid

(9E,11E)-13-oxooctadeca-9,11-dienoic acid

C18H30O3 (294.21948299999997)


A natural product found in Carthamus oxyacantha.

   

(-)-beta-thujone

(1R,4R,5S)-4-methyl-1-(propan-2-yl)bicyclo[3.1.0]hexan-3-one (1R,4R,5S)-thujan-3-one

C10H16O (152.12010859999998)


   

Estragonoside

5,6,7-trihydroxy-2-(4-hydroxy-3-methoxyphenyl)-8-[(3,4,5-trihydroxy-6-methyloxan-2-yl)oxy]-4H-chromen-4-one

C22H22O12 (478.1111212)


   

Ethyl &alpha

Butyric acid, 2-methyl-, ethyl ester (8ci)

C7H14O2 (130.09937440000002)


   

Taraxasterone

4,4,6a,6b,8a,12,14b-heptamethyl-11-methylidene-docosahydropicen-3-one

C30H48O (424.37049579999996)


   

Arlatin

6,6a-dihydroxy-3,6,9-trimethyl-2H,3H,3aH,4H,5H,6H,6aH,7H,9aH,9bH-azuleno[4,5-b]furan-2-one

C15H22O4 (266.1518012)


   

b-farnesene

(6Z)-7,11-dimethyl-3-methylidenedodeca-1,6,10-triene

C15H24 (204.18779039999998)


   

Sabinene hydrate

(1R,2S,5R)-2-methyl-5-(propan-2-yl)bicyclo[3.1.0]hexan-2-ol

C10H18O (154.1357578)


   

Isointermedeol

1,4a-dimethyl-7-(prop-1-en-2-yl)-decahydronaphthalen-1-ol

C15H26O (222.1983546)


   

Epi-a-amyrin

4,4,6a,6b,8a,11,12,14b-octamethyl-1,2,3,4,4a,5,6,6a,6b,7,8,8a,9,10,11,12,12a,14,14a,14b-icosahydropicen-3-ol

C30H50O (426.386145)


   

Oxopelenolide a

3,6,10-trimethyl-2H,3H,3aH,4H,5H,8H,9H,10H,11H,11aH-cyclodeca[b]furan-2,9-dione

C15H22O3 (250.1568862)


   

g-Muurolene

7-methyl-4-methylidene-1-(propan-2-yl)-1,2,3,4,4a,5,6,8a-octahydronaphthalene

C15H24 (204.18779039999998)


   

Neryl butyrate

Butanoic acid, (2Z)-3,7-dimethyl-2,6-octadien-1-yl ester

C14H24O2 (224.1776204)


   

9-Hydroxygeraniol

(2Z,6E)-2,6-dimethylocta-2,6-diene-1,8-diol

C10H18O2 (170.1306728)


   

Vicinin 2

5,7-dihydroxy-2-(4-hydroxyphenyl)-6,8-bis({[3,4,5-trihydroxy-6-(hydroxymethyl)oxan-2-yl]oxy})-4H-chromen-4-one

C27H30O17 (626.148293)


   

Pinocarvone

Pinocarvone

C10H14O (150.1044594)


A bridged compound resulting from rearrangement of carvone.

   

ARTEPILLIN C

2-Propenoic acid, 3-(4-hydroxy-3,5-bis(3-methyl-2-butenyl)phenyl)-, (E)-

C19H24O3 (300.1725354)


   
   

(+)-Bornyl acetate

Bornyl acetate, (-)-

C12H20O2 (196.14632200000003)


(-)-Bornyl acetate (L-(-)-Bornyl acetate), isolated from hyssop oil, is a less active enantiomer of (+)-Bornyl acetate. (-)-Bornyl acetate possesses antifungal activity[1]. (-)-Bornyl acetate (L-(-)-Bornyl acetate), isolated from hyssop oil, is a less active enantiomer of (+)-Bornyl acetate. (-)-Bornyl acetate possesses antifungal activity[1]. (-)-Bornyl acetate (L-(-)-Bornyl acetate), isolated from hyssop oil, is a less active enantiomer of (+)-Bornyl acetate. (-)-Bornyl acetate possesses antifungal activity[1]. (-)-Bornyl acetate (L-(-)-Bornyl acetate), isolated from hyssop oil, is a less active enantiomer of (+)-Bornyl acetate. (-)-Bornyl acetate possesses antifungal activity[1]. Bornyl acetate is a potent odorant, exhibiting one of the highest flavor dilution factor (FD factor). Bornyl acetate possesses anti-cancer activity[1][2]. Bornyl acetate is a potent odorant, exhibiting one of the highest flavor dilution factor (FD factor). Bornyl acetate possesses anti-cancer activity[1][2].

   

Humulene

trans,trans,trans-2,6,6,9-Tetramethyl-1,4,8-cycloundecatriene

C15H24 (204.18779039999998)


α-Humulene is a main constituent of Tanacetum vulgare L. (Asteraceae) essential oil with anti-inflammation (IC50=15±2 μg/mL). α-Humulene inhibits COX-2 and iNOS expression[1]. α-Humulene is a main constituent of Tanacetum vulgare L. (Asteraceae) essential oil with anti-inflammation (IC50=15±2 μg/mL). α-Humulene inhibits COX-2 and iNOS expression[1].

   

Vanillate

4-Hydroxy-3-methoxybenzoic acid

C8H8O4 (168.0422568)


Vanillic acid is a flavoring agent found in edible plants and fruits, also found in Angelica sinensis. Vanillic acid inhibits NF-κB activation. Anti-inflammatory, antibacterial, and chemopreventive effects[1]. Vanillic acid is a flavoring agent found in edible plants and fruits, also found in Angelica sinensis. Vanillic acid inhibits NF-κB activation. Anti-inflammatory, antibacterial, and chemopreventive effects[1].

   

α-Pinene

InChI=1\C10H16\c1-7-4-5-8-6-9(7)10(8,2)3\h4,8-9H,5-6H2,1-3H

C10H16 (136.1251936)


A pinene that is bicyclo[3.1.1]hept-2-ene substituted by methyl groups at positions 2, 6 and 6 respectively. (-)-α-Pinene is a monoterpene and shows sleep enhancing property through a direct binding to GABAA-benzodiazepine (BZD) receptors by acting as a partial modulator at the BZD binding site[1]. (-)-α-Pinene is a monoterpene and shows sleep enhancing property through a direct binding to GABAA-benzodiazepine (BZD) receptors by acting as a partial modulator at the BZD binding site[1]. (-)-α-Pinene is a monoterpene and shows sleep enhancing property through a direct binding to GABAA-benzodiazepine (BZD) receptors by acting as a partial modulator at the BZD binding site[1]. (-)-α-Pinene is a monoterpene and shows sleep enhancing property through a direct binding to GABAA-benzodiazepine (BZD) receptors by acting as a partial modulator at the BZD binding site[1]. (-)-α-Pinene is a monoterpene and shows sleep enhancing property through a direct binding to GABAA-benzodiazepine (BZD) receptors by acting as a partial modulator at the BZD binding site[1]. (-)-α-Pinene is a monoterpene and shows sleep enhancing property through a direct binding to GABAA-benzodiazepine (BZD) receptors by acting as a partial modulator at the BZD binding site[1].

   

CHEBI:15385

(1S,8AR)-4,7-dimethyl-1-(propan-2-yl)-1,2,3,5,6,8a-hexahydronaphthalene

C15H24 (204.18779039999998)


   

Safranal

InChI=1\C10H14O\c1-8-5-4-6-10(2,3)9(8)7-11\h4-5,7H,6H2,1-3H

C10H14O (150.1044594)


Safranal is an orally active main component of Saffron (Crocus sativus) and is responsible for the unique aroma of this spice. Safranal has neuroprotective and anti-inflammatory effects and has the potential for Parkinson’s disease research[1]. Safranal is an orally active main component of Saffron (Crocus sativus) and is responsible for the unique aroma of this spice. Safranal has neuroprotective and anti-inflammatory effects and has the potential for Parkinson’s disease research[1].

   

linoleic

9,12-Octadecadienoic acid, (9E,12E)-

C18H32O2 (280.2402172)


Linolelaidic acid (Linoelaidic acid), an omega-6 trans fatty acid, acts as a source of energy. Linolelaidic acid is an essential nutrient, adding in enteral, parenteral, and infant formulas. Linolelaidic acid can be used for heart diseases research[1]. Linolelaidic acid (Linoelaidic acid), an omega-6 trans fatty acid, acts as a source of energy. Linolelaidic acid is an essential nutrient, adding in enteral, parenteral, and infant formulas. Linolelaidic acid can be used for heart diseases research[1].

   

Hepanal

[1aR-(1a.alpha.,4.alpha.,4a.beta.,7b.alpha.)]-1a,2,3,4,4a,5,6,7b-octahydro-1,1,4,7-tetramethyl-1H-Cycloprop[e]azulene

C15H24 (204.18779039999998)


   

vitamin C

2-o-(beta-d-glucopyranosyl)-ascorbic acid_qt

C6H8O6 (176.0320868)


G - Genito urinary system and sex hormones > G01 - Gynecological antiinfectives and antiseptics > G01A - Antiinfectives and antiseptics, excl. combinations with corticosteroids > G01AD - Organic acids A - Alimentary tract and metabolism > A11 - Vitamins > A11G - Ascorbic acid (vitamin c), incl. combinations > A11GA - Ascorbic acid (vitamin c), plain B - Blood and blood forming organs > B03 - Antianemic preparations > B03A - Iron preparations > B03AA - Iron bivalent, oral preparations COVID info from clinicaltrial, clinicaltrials, clinical trial, clinical trials D020011 - Protective Agents > D000975 - Antioxidants C26170 - Protective Agent > C275 - Antioxidant D018977 - Micronutrients > D014815 - Vitamins S - Sensory organs > S01 - Ophthalmologicals Corona-virus Coronavirus SARS-CoV-2 COVID-19 SARS-CoV COVID19 SARS2 SARS L-Ascorbic acid (L-Ascorbate), an electron donor, is an endogenous antioxidant agent. L-Ascorbic acid inhibits selectively Cav3.2 channels with an IC50 of 6.5 μM. L-Ascorbic acid is also a collagen deposition enhancer and an elastogenesis inhibitor[1][2][3]. L-Ascorbic acid exhibits anti-cancer effects through the generation of reactive oxygen species (ROS) and selective damage to cancer cells[4]. L-Ascorbic acid (L-Ascorbate), an electron donor, is an endogenous antioxidant agent. L-Ascorbic acid inhibits selectively Cav3.2 channels with an IC50 of 6.5 μM. L-Ascorbic acid is also a collagen deposition enhancer and an elastogenesis inhibitor[1][2][3]. L-Ascorbic acid exhibits anti-cancer effects through the generation of reactive oxygen species (ROS) and selective damage to cancer cells[4].

   

73464-47-8

1H-Cycloprop(e)azulene, decahydro-1,1,4-trimethyl-7-methylene-, (1aR-(1aalpha,4alpha,4abeta,7abeta,7balpha))-

C15H24 (204.18779039999998)


   

Cadinene

Naphthalene, 1,2,4a,5,8,8a-hexahydro-4,7-dimethyl-1-(1-methylethyl)-, (1S-(1alpha,4abeta,8aalpha))- (9CI)

C15H24 (204.18779039999998)


   

cuminol

InChI=1\C10H14O\c1-8(2)10-5-3-9(7-11)4-6-10\h3-6,8,11H,7H2,1-2H

C10H14O (150.1044594)


4-Isopropylbenzyl alcohol is a chemical composition of the essential oils from the leaves and flowers of Camellia nitidissima. C. nitidissima possess multiple biological activities including antioxidant activity, anticancer activity, and cytotoxicity as well as inhibiting the formation of advanced glycation end-products[1]. 4-Isopropylbenzyl alcohol is a chemical composition of the essential oils from the leaves and flowers of Camellia nitidissima. C. nitidissima possess multiple biological activities including antioxidant activity, anticancer activity, and cytotoxicity as well as inhibiting the formation of advanced glycation end-products[1].

   

tridecanol

4-01-00-01860 (Beilstein Handbook Reference)

C13H28O (200.2140038)


   

Barrelin

Naphtho(1,2-b)furan-2,6(3H,4H)-dione, 3a,5,5a,9,9a,9b-hexahydro-9-hydroxy-3,5a,9-trimethyl-, (3S-(3alpha,3aalpha,5abeta,9alpha,9aalpha,9bbeta))-

C15H20O4 (264.13615200000004)


   

AIDS-035388

4H-1-Benzopyran-4-one, 2-(3,4-dihydroxyphenyl)-5-hydroxy-3,7-dimethoxy-

C17H14O7 (330.0739494)


   

Dihydrocarveol

(1R,2R,4R)-Dihydrocarveol

C10H18O (154.1357578)


The (1R,2R,4R)-stereoisomer of dihydrocarveol. A p-menthane monoterpenoid that is the dihydro derivative of carveol. Dihydrocarveol, also known as 2-methyl-5-(1-methylethenyl)cyclohexanol or 6-methyl-3-isopropenylcyclohexanol, is a member of the class of compounds known as menthane monoterpenoids. Menthane monoterpenoids are monoterpenoids with a structure based on the o-, m-, or p-menthane backbone. P-menthane consists of the cyclohexane ring with a methyl group and a (2-methyl)-propyl group at the 1 and 4 ring position, respectively. The o- and m- menthanes are much rarer, and presumably arise by alkyl migration of p-menthanes. Dihydrocarveol is slightly soluble (in water) and an extremely weak acidic compound (based on its pKa). Dihydrocarveol is a herbal, menthol, and minty tasting compound and can be found in a number of food items such as dill, pepper (spice), pot marjoram, and wild celery, which makes dihydrocarveol a potential biomarker for the consumption of these food products. Dihydrocarveol, also known as 2-methyl-5-(1-methylethenyl)cyclohexanol or 6-methyl-3-isopropenylcyclohexanol, is a member of the class of compounds known as menthane monoterpenoids. Menthane monoterpenoids are monoterpenoids with a structure based on the o-, m-, or p-menthane backbone. P-menthane consists of the cyclohexane ring with a methyl group and a (2-methyl)-propyl group at the 1 and 4 ring position, respectively. The o- and m- menthanes are much rarer, and presumably arise by alkyl migration of p-menthanes. Dihydrocarveol is slightly soluble (in water) and an extremely weak acidic compound (based on its pKa). Dihydrocarveol is a herbal, menthol, and minty tasting compound and can be found in a number of food items such as dill, pot marjoram, pepper (spice), and caraway, which makes dihydrocarveol a potential biomarker for the consumption of these food products.

   

D-CAMPHOR

(±)-Camphor

C10H16O (152.12010859999998)


(+)-camphor, also known as formosa camphor or 2-bornanone, is a member of the class of compounds known as bicyclic monoterpenoids. Bicyclic monoterpenoids are monoterpenoids containing exactly 2 rings, which are fused to each other. Thus, (+)-camphor is considered to be an isoprenoid lipid molecule (+)-camphor is practically insoluble (in water) and an extremely weak basic (essentially neutral) compound (based on its pKa). (+)-camphor is a bitter, camphor, and herbal tasting compound and can be found in a number of food items such as sugar apple, sunflower, fennel, and cardamom, which makes (+)-camphor a potential biomarker for the consumption of these food products. (+)-Camphor is a food additive used medicinally as a preservative. (+)-Camphor is a food additive used medicinally as a preservative. (+)-Camphor is a food additive used medicinally as a preservative. (+)-Camphor is a food additive used medicinally as a preservative.

   

Valencene

NAPHTHALENE, 1,2,3,5,6,7,8,8A-OCTAHYDRO-1,8A-DIMETHYL-7-(1-METHYLETHENYL)-, (1R-(1.ALPHA.,7.BETA.,8A.ALPHA.))-

C15H24 (204.18779039999998)


(+)-valencene is a carbobicyclic compound and sesquiterpene that is 1,2,3,4,4a,5,6,7-octahydronaphthalene which is substituted a prop-1-en-2-yl group at position 3 and by methyl groups at positions 4a and 5 (the 3R,4aS,5R- diastereoisomer). It is a sesquiterpene, a carbobicyclic compound and a polycyclic olefin. Valencene is a natural product found in Xylopia sericea, Helichrysum odoratissimum, and other organisms with data available. Constituent of orange oil. Valencene is found in many foods, some of which are citrus, common oregano, rosemary, and sweet orange. Valencene is a sesquiterpene isolated from Cyperus rotundus, possesses antiallergic, antimelanogenesis, anti-infammatory, and antioxidant activitivies. Valencene inhibits the exaggerated expression of Th2 chemokines and proinflammatory chemokines through blockade of the NF-κB pathway. Valencene is used to flavor foods and drinks[1][2][3].

   

alpha-gurjunene

(-)-alpha-Gurjunene

C15H24 (204.18779039999998)


1-epi-alpha-gurjunene is a member of the class of compounds known as 5,10-cycloaromadendrane sesquiterpenoids. 5,10-cycloaromadendrane sesquiterpenoids are aromadendrane sesquiterpenoids that arise from the C5-C10 cyclization of the aromadendrane skeleton. Within the cell, 1-epi-alpha-gurjunene is primarily located in the membrane (predicted from logP). It can also be found in the extracellular space.

   
   

(+)-4-Epi-cryptomeridiol

(+)-4-Epi-cryptomeridiol

C15H28O2 (240.20891880000002)


A natural product found in Citrus hystrix.

   

(1S,2E,10R)-3,7,11,11-tetramethylbicyclo[8.1.0]undeca-2,6-diene

(1S,2E,10R)-3,7,11,11-tetramethylbicyclo[8.1.0]undeca-2,6-diene

C15H24 (204.18779039999998)


   
   

p-Tolualdehyde

4-Methylbenzaldehyde

C8H8O (120.0575118)


A tolualdehyde compound with the methyl substituent at the 4-position. p-Tolualdehyde is an endogenous metabolite. p-Tolualdehyde is an endogenous metabolite.

   

(+)-Camphene

(+)-Camphene

C10H16 (136.1251936)


A monoterpene with a bicyclic skeleton that is bicyclo[2.2.1]heptane substituted by geminal methyl groups at position 2 and a methylidene group at position 3. It is a widespread natural product found in many essential oils.

   
   

ASCARIDOLE

ASCARIDOLE

C10H16O2 (168.1150236)


A p-menthane monoterpenoid that is p-menth-2-ene with a peroxy group across position 1 to 4. D009676 - Noxae > D016877 - Oxidants > D010545 - Peroxides

   

Desacetoxymatricarin

Desacetoxymatricarin

C15H18O3 (246.1255878)


   

beta-Gurjunene

beta-Gurjunene

C15H24 (204.18779039999998)


A carbotricyclic compound and sesquiterpene that is decahydro-1H-cyclopropa[e]azulene which is substituted by methyl groups at positions 1, 1, and 4, and by a methylidene group at position 7 (the (1aR,4R,4aR,7aR,7bR)- stereoisomer). It has been isolated from several plant species such as Acorus calamus and Pinus peuce.

   

Hemimellitene

1,2,3-TRIMETHYLBENZENE

C9H12 (120.09389519999999)


   

Pinocarveol

Bicyclo[3.1.1]heptan-3-ol,6,6-dimethyl-2-methylene-

C10H16O (152.12010859999998)


A pinane monoterpenoid that is a bicyclo[3.1.1]heptane substituted by two methyl groups at position 6, a methylidene group at position 2 and a hydroxy group at position 3.

   

Ethyl 2-methylbutyrate

Ethyl 2-methylbutanoate

C7H14O2 (130.09937440000002)


A fatty acid ethyl ester obtained by the formal condensation of 2-methylbutyric acid with ethanol. It is a constituent of the aroma of wines, strawberries, blueberries, and apples.

   

2-(4-methylphenyl)propan-2-ol

2-(4-methylphenyl)propan-2-ol

C10H14O (150.1044594)


   

cedrene

Cedarwood oil terpenes fraction

C15H24 (204.18779039999998)


(-)-Cedrene (α-cedrene) is a sesquiterpene constituent of cedarwood oils, with anti-leukemic, antimicrobial and anti-obesity activities[1]. (-)-Cedrene (α-cedrene) is a sesquiterpene constituent of cedarwood oils, with anti-leukemic, antimicrobial and anti-obesity activities[1]. (-)-Cedrene (α-cedrene) is a sesquiterpene constituent of cedarwood oils, with anti-leukemic, antimicrobial and anti-obesity activities[1]. (-)-Cedrene (α-cedrene) is a sesquiterpene constituent of cedarwood oils, with anti-leukemic, antimicrobial and anti-obesity activities[1].

   
   

(1R,8R)-1,3-dimethyl-8-propan-2-yltricyclo[4.4.0.02,7]dec-3-ene

(1R,8R)-1,3-dimethyl-8-propan-2-yltricyclo[4.4.0.02,7]dec-3-ene

C15H24 (204.18779039999998)


   

3-(4-hydroxy-3-methoxyphenyl)prop-2-enoic acid

3-(4-hydroxy-3-methoxyphenyl)prop-2-enoic acid

C10H10O4 (194.057906)


   

13-oxooctadeca-9,11-dienoic acid

13-oxooctadeca-9,11-dienoic acid

C18H30O3 (294.21948299999997)


   

delta-Cadinene

delta-Cadinene

C15H24 (204.18779039999998)


A member of the cadinene family of sesquiterpenes in which the double bonds are located at the 4-4a and 7-8 positions, and in which the isopropyl group at position 1 is cis to the hydrogen at the adjacent bridgehead carbon (position 8a).

   

Tridecan-1-ol

Tridecan-1-ol

C13H28O (200.2140038)


A long-chain primary fatty alcohol that is tridecane substituted by a hydroxy group at position 1.

   

(1r,6s,8ar)-6-isopropyl-8a-methyl-4-methylidene-1,2,3,6,7,8-hexahydronaphthalen-1-ol

(1r,6s,8ar)-6-isopropyl-8a-methyl-4-methylidene-1,2,3,6,7,8-hexahydronaphthalen-1-ol

C15H24O (220.18270539999997)


   

tetradec-6-en-8,10,12-triyn-3-one

tetradec-6-en-8,10,12-triyn-3-one

C14H14O (198.1044594)


   

7,11,15-trimethyl-3-methylidenehexadecane-1,2-diol

7,11,15-trimethyl-3-methylidenehexadecane-1,2-diol

C20H40O2 (312.302814)


   

2-[(3as,6s,7s,7as)-6-methyl-3-methylidene-2-oxo-7-(prop-1-en-2-yl)-tetrahydro-3ah-1-benzofuran-6-yl]acetaldehyde

2-[(3as,6s,7s,7as)-6-methyl-3-methylidene-2-oxo-7-(prop-1-en-2-yl)-tetrahydro-3ah-1-benzofuran-6-yl]acetaldehyde

C15H20O3 (248.14123700000002)


   

tetradeca-4,6-dien-8,10,12-triyn-1-yl acetate

tetradeca-4,6-dien-8,10,12-triyn-1-yl acetate

C16H16O2 (240.1150236)


   

5-(2,5-dihydrofuran-3-yl)-2-methylpent-1-en-3-ol

5-(2,5-dihydrofuran-3-yl)-2-methylpent-1-en-3-ol

C10H16O2 (168.1150236)


   

2-(1,8-dihydroxy-4a,8-dimethyl-octahydronaphthalen-2-yl)prop-2-enoic acid

2-(1,8-dihydroxy-4a,8-dimethyl-octahydronaphthalen-2-yl)prop-2-enoic acid

C15H24O4 (268.1674504)


   

1-isopropyl-4-methoxy-4-methylbicyclo[3.1.0]hexane-2,3-diol

1-isopropyl-4-methoxy-4-methylbicyclo[3.1.0]hexane-2,3-diol

C11H20O3 (200.14123700000002)


   

(1r,4r,6r,9r,10s)-4,12,12-trimethyl-5-oxatricyclo[8.2.0.0⁴,⁶]dodecan-9-ol

(1r,4r,6r,9r,10s)-4,12,12-trimethyl-5-oxatricyclo[8.2.0.0⁴,⁶]dodecan-9-ol

C14H24O2 (224.1776204)


   

(3ar,6r,8ar,9ar)-6-hydroxy-5,8a-dimethyl-3-methylidene-3ah,4h,6h,7h,8h,9h,9ah-naphtho[2,3-b]furan-2-one

(3ar,6r,8ar,9ar)-6-hydroxy-5,8a-dimethyl-3-methylidene-3ah,4h,6h,7h,8h,9h,9ah-naphtho[2,3-b]furan-2-one

C15H20O3 (248.14123700000002)


   

(10r,11ar)-3-(hydroxymethyl)-6,10-dimethyl-4h,5h,8h,10h,11h,11ah-cyclodeca[b]furan-2,9-dione

(10r,11ar)-3-(hydroxymethyl)-6,10-dimethyl-4h,5h,8h,10h,11h,11ah-cyclodeca[b]furan-2,9-dione

C15H20O4 (264.13615200000004)


   

10-hydroxy-9-methyl-5-methylidene-4-oxo-3,13-dioxatetracyclo[8.4.0.0²,⁶.0¹²,¹⁴]tetradec-8-en-7-yl acetate

10-hydroxy-9-methyl-5-methylidene-4-oxo-3,13-dioxatetracyclo[8.4.0.0²,⁶.0¹²,¹⁴]tetradec-8-en-7-yl acetate

C16H18O6 (306.11033280000004)


   

(3s,5r,6e)-3,7,11-trimethyldodeca-1,6,10-triene-3,5-diol

(3s,5r,6e)-3,7,11-trimethyldodeca-1,6,10-triene-3,5-diol

C15H26O2 (238.1932696)


   

1-[(2s)-3,3-dimethyloxiran-2-yl]-2,2-dimethylbut-3-en-1-one

1-[(2s)-3,3-dimethyloxiran-2-yl]-2,2-dimethylbut-3-en-1-one

C10H16O2 (168.1150236)


   

(3ar,4ar,8ar,9ar)-4a-hydroperoxy-8a-methyl-3,5-dimethylidene-hexahydro-3ah-naphtho[2,3-b]furan-2-one

(3ar,4ar,8ar,9ar)-4a-hydroperoxy-8a-methyl-3,5-dimethylidene-hexahydro-3ah-naphtho[2,3-b]furan-2-one

C15H20O4 (264.13615200000004)


   

(3s,3ar,6s,6ar,10ar)-3,6,9-trimethyl-3h,3ah,4h,5h,6h,6ah,7h,8h-naphtho[4a,4-b]furan-2-one

(3s,3ar,6s,6ar,10ar)-3,6,9-trimethyl-3h,3ah,4h,5h,6h,6ah,7h,8h-naphtho[4a,4-b]furan-2-one

C15H22O2 (234.1619712)


   

(1s,3ar,4r,7s,7as)-4-hydroxy-7-isopropyl-4-methyl-octahydroindene-1-carboxylic acid

(1s,3ar,4r,7s,7as)-4-hydroxy-7-isopropyl-4-methyl-octahydroindene-1-carboxylic acid

C14H24O3 (240.1725354)


   

(1r,4s,5r,8s,9r)-4-methoxy-2,5,9-trimethyltricyclo[6.3.0.0¹,⁵]undec-2-ene-3-carboxylic acid

(1r,4s,5r,8s,9r)-4-methoxy-2,5,9-trimethyltricyclo[6.3.0.0¹,⁵]undec-2-ene-3-carboxylic acid

C16H24O3 (264.1725354)


   

(1z)-1-phenylhex-1-en-4-yn-3-one

(1z)-1-phenylhex-1-en-4-yn-3-one

C12H10O (170.073161)


   

6-hydroxy-8a-methyl-3-methylidene-octahydronaphtho[2,3-b]furan-2,5-dione

6-hydroxy-8a-methyl-3-methylidene-octahydronaphtho[2,3-b]furan-2,5-dione

C14H18O4 (250.1205028)


   

(3as,6s,7r,8s,8ar)-8-hydroxy-6,8-dimethyl-3-methylidene-tetrahydro-3ah-spiro[cyclohepta[b]furan-7,2'-oxolane]-2,5'-dione

(3as,6s,7r,8s,8ar)-8-hydroxy-6,8-dimethyl-3-methylidene-tetrahydro-3ah-spiro[cyclohepta[b]furan-7,2'-oxolane]-2,5'-dione

C15H20O5 (280.13106700000003)


   

(3r,3ar,9as)-3,5,8-trimethyl-3h,3ah,9h,9ah-azuleno[6,5-b]furan-2,7-dione

(3r,3ar,9as)-3,5,8-trimethyl-3h,3ah,9h,9ah-azuleno[6,5-b]furan-2,7-dione

C15H16O3 (244.1099386)


   

(3s,3ar,4s,6r,6as,8s,9as,9br)-4,8-dihydroxy-3,6-dimethyl-9-methylidene-decahydroazuleno[4,5-b]furan-2-one

(3s,3ar,4s,6r,6as,8s,9as,9br)-4,8-dihydroxy-3,6-dimethyl-9-methylidene-decahydroazuleno[4,5-b]furan-2-one

C15H22O4 (266.1518012)


   

(3as,4r,6as,9ar,9bs)-4,6a-dihydroxy-6,9-dimethyl-3-methylidene-3ah,4h,7h,9ah,9bh-azuleno[4,5-b]furan-2-one

(3as,4r,6as,9ar,9bs)-4,6a-dihydroxy-6,9-dimethyl-3-methylidene-3ah,4h,7h,9ah,9bh-azuleno[4,5-b]furan-2-one

C15H18O4 (262.1205028)


   

(3as,4s,6as)-4-(4-hydroxy-3,5-dimethoxyphenyl)-tetrahydro-3h-furo[3,4-c]furan-1-one

(3as,4s,6as)-4-(4-hydroxy-3,5-dimethoxyphenyl)-tetrahydro-3h-furo[3,4-c]furan-1-one

C14H16O6 (280.0946836)


   

(1s,3s,4r)-1,3-dimethyl-3-(4-methylpent-3-en-1-yl)-2-oxabicyclo[2.2.2]oct-5-ene

(1s,3s,4r)-1,3-dimethyl-3-(4-methylpent-3-en-1-yl)-2-oxabicyclo[2.2.2]oct-5-ene

C15H24O (220.18270539999997)


   

(3r,3as,9r,10s,11ar)-9-hydroxy-3,6,10-trimethyl-3h,3ah,4h,5h,8h,9h,10h,11h,11ah-cyclodeca[b]furan-2-one

(3r,3as,9r,10s,11ar)-9-hydroxy-3,6,10-trimethyl-3h,3ah,4h,5h,8h,9h,10h,11h,11ah-cyclodeca[b]furan-2-one

C15H24O3 (252.1725354)


   

2-{1a,4-dimethyl-octahydro-2h-naphtho[1,2-b]oxiren-7-yl}prop-2-enoic acid

2-{1a,4-dimethyl-octahydro-2h-naphtho[1,2-b]oxiren-7-yl}prop-2-enoic acid

C15H22O3 (250.1568862)


   

(2e,6e)-3,7,11,11-tetramethylbicyclo[8.1.0]undeca-2,6-diene

(2e,6e)-3,7,11,11-tetramethylbicyclo[8.1.0]undeca-2,6-diene

C15H24 (204.18779039999998)


   

6,10-dimethyl-4'-(4-methylpent-3-en-1-yl)-3a,4,5,8,9,11a-hexahydrospiro[cyclodeca[b]furan-3,1'-cyclohexan]-3'-en-2-one

6,10-dimethyl-4'-(4-methylpent-3-en-1-yl)-3a,4,5,8,9,11a-hexahydrospiro[cyclodeca[b]furan-3,1'-cyclohexan]-3'-en-2-one

C25H36O2 (368.2715156)


   

9-hydroxy-3,5a,9-trimethyl-octahydronaphtho[1,2-b]furan-2,6-dione

9-hydroxy-3,5a,9-trimethyl-octahydronaphtho[1,2-b]furan-2,6-dione

C15H22O4 (266.1518012)


   

(6e)-3-oxotetradec-6-en-8,10,12-triyn-1-yl 3-methylbutanoate

(6e)-3-oxotetradec-6-en-8,10,12-triyn-1-yl 3-methylbutanoate

C19H22O3 (298.15688620000003)


   

12,17-dihydroxy-3,8,12,17,21,25-hexamethyl-6,23-dioxaheptacyclo[13.9.2.0¹,¹⁶.0²,¹⁴.0⁴,¹³.0⁵,⁹.0²⁰,²⁴]hexacos-3-ene-7,22-dione

12,17-dihydroxy-3,8,12,17,21,25-hexamethyl-6,23-dioxaheptacyclo[13.9.2.0¹,¹⁶.0²,¹⁴.0⁴,¹³.0⁵,⁹.0²⁰,²⁴]hexacos-3-ene-7,22-dione

C30H42O6 (498.2981232)


   

(6br,8ar,12ar,14ar)-4,4,6b,8a,11,11,12b,14a-octamethyl-2,6,6a,7,8,9,10,12,12a,13,14,14b-dodecahydro-1h-picen-3-one

(6br,8ar,12ar,14ar)-4,4,6b,8a,11,11,12b,14a-octamethyl-2,6,6a,7,8,9,10,12,12a,13,14,14b-dodecahydro-1h-picen-3-one

C30H48O (424.37049579999996)


   

(3as,5ar,6r,8s,9as,9bs)-6,8-dihydroxy-5a-methyl-3,9-dimethylidene-octahydronaphtho[1,2-b]furan-2-one

(3as,5ar,6r,8s,9as,9bs)-6,8-dihydroxy-5a-methyl-3,9-dimethylidene-octahydronaphtho[1,2-b]furan-2-one

C15H20O4 (264.13615200000004)


   

4,8-dimethyl-12-methylidene-2-oxatricyclo[7.3.1.0⁵,¹³]tridecan-3-one

4,8-dimethyl-12-methylidene-2-oxatricyclo[7.3.1.0⁵,¹³]tridecan-3-one

C15H22O2 (234.1619712)


   

(1s,2s,7r,10r,11r,12r)-4-hydroxy-1,5-dimethyl-9-oxo-8-oxatetracyclo[8.3.1.0²,⁶.0⁷,¹¹]tetradec-5-en-12-yl 2-methylpropanoate

(1s,2s,7r,10r,11r,12r)-4-hydroxy-1,5-dimethyl-9-oxo-8-oxatetracyclo[8.3.1.0²,⁶.0⁷,¹¹]tetradec-5-en-12-yl 2-methylpropanoate

C19H26O5 (334.1780146)


   

5-hydroxy-3,7,12-trimethyl-2,9-dioxatetracyclo[9.3.0.0¹,³.0⁶,¹⁰]tetradec-12-en-8-one

5-hydroxy-3,7,12-trimethyl-2,9-dioxatetracyclo[9.3.0.0¹,³.0⁶,¹⁰]tetradec-12-en-8-one

C15H20O4 (264.13615200000004)


   

(3as,9r,11as)-6,10-dimethyl-3-methylidene-2-oxo-3ah,4h,5h,8h,9h,11ah-cyclodeca[b]furan-9-yl acetate

(3as,9r,11as)-6,10-dimethyl-3-methylidene-2-oxo-3ah,4h,5h,8h,9h,11ah-cyclodeca[b]furan-9-yl acetate

C17H22O4 (290.1518012)


   

[6-(4-acetylphenoxy)-3,4,5-trihydroxyoxan-2-yl]methyl 3-(3,4-dihydroxyphenyl)prop-2-enoate

[6-(4-acetylphenoxy)-3,4,5-trihydroxyoxan-2-yl]methyl 3-(3,4-dihydroxyphenyl)prop-2-enoate

C23H24O10 (460.13694039999996)


   

(1s,2s,5s,6s,9s,10s)-5,9,10-trimethyl-3-oxatetracyclo[7.4.0.0¹,¹⁰.0²,⁶]tridec-12-ene-4,11-dione

(1s,2s,5s,6s,9s,10s)-5,9,10-trimethyl-3-oxatetracyclo[7.4.0.0¹,¹⁰.0²,⁶]tridec-12-ene-4,11-dione

C15H18O3 (246.1255878)


   

(3s,6s)-6-[(1s,4r)-4-hydroperoxy-4-methylcyclohex-2-en-1-yl]-2,2,6-trimethyloxan-3-yl acetate

(3s,6s)-6-[(1s,4r)-4-hydroperoxy-4-methylcyclohex-2-en-1-yl]-2,2,6-trimethyloxan-3-yl acetate

C17H28O5 (312.1936638)


   

(1r,3r,7r,9r,10r,12r,14r)-9,14-dimethyl-4-methylidene-6,11-dioxatetracyclo[7.5.0.0³,⁷.0¹⁰,¹²]tetradecane-5,13-dione

(1r,3r,7r,9r,10r,12r,14r)-9,14-dimethyl-4-methylidene-6,11-dioxatetracyclo[7.5.0.0³,⁷.0¹⁰,¹²]tetradecane-5,13-dione

C15H18O4 (262.1205028)


   

2-(8-hydroxy-4a,8-dimethyl-octahydronaphthalen-2-yl)prop-2-enoic acid

2-(8-hydroxy-4a,8-dimethyl-octahydronaphthalen-2-yl)prop-2-enoic acid

C15H24O3 (252.1725354)


   

4,6-dihydroxy-3,5a,9-trimethyl-3h,3ah,4h,5h,6h,7h,8h,9bh-naphtho[1,2-b]furan-2-one

4,6-dihydroxy-3,5a,9-trimethyl-3h,3ah,4h,5h,6h,7h,8h,9bh-naphtho[1,2-b]furan-2-one

C15H22O4 (266.1518012)


   
   

(3as,6as,9as,9bs)-6a-hydroxy-6-(hydroxymethyl)-9-methyl-3-methylidene-3ah,4h,7h,9ah,9bh-azuleno[4,5-b]furan-2-one

(3as,6as,9as,9bs)-6a-hydroxy-6-(hydroxymethyl)-9-methyl-3-methylidene-3ah,4h,7h,9ah,9bh-azuleno[4,5-b]furan-2-one

C15H18O4 (262.1205028)


   
   

(1s,2s,5s,6r,7s,10r,12r,14s)-5,14-dimethyl-9-methylidene-4-oxo-3,13-dioxatetracyclo[8.4.0.0²,⁶.0¹²,¹⁴]tetradecan-7-yl 2-methylpropanoate

(1s,2s,5s,6r,7s,10r,12r,14s)-5,14-dimethyl-9-methylidene-4-oxo-3,13-dioxatetracyclo[8.4.0.0²,⁶.0¹²,¹⁴]tetradecan-7-yl 2-methylpropanoate

C19H26O5 (334.1780146)


   

methyl (3r,5r)-3,5-bis({[(2e)-3-(3,4-dihydroxyphenyl)prop-2-enoyl]oxy})-1,4-dihydroxycyclohexane-1-carboxylate

methyl (3r,5r)-3,5-bis({[(2e)-3-(3,4-dihydroxyphenyl)prop-2-enoyl]oxy})-1,4-dihydroxycyclohexane-1-carboxylate

C26H26O12 (530.1424196)


   

(2e,5r,8s)-2-(hexa-2,4-diyn-1-ylidene)-1,6-dioxaspiro[4.5]dec-3-en-8-yl acetate

(2e,5r,8s)-2-(hexa-2,4-diyn-1-ylidene)-1,6-dioxaspiro[4.5]dec-3-en-8-yl acetate

C16H16O4 (272.1048536)


   

2-[(5r)-5-ethenyl-5-methyloxolan-2-yl]-2,6,6-trimethylpyran-3-one

2-[(5r)-5-ethenyl-5-methyloxolan-2-yl]-2,6,6-trimethylpyran-3-one

C15H22O3 (250.1568862)


   

(2s)-2-[(2s,5r)-5-ethenyl-5-methyloxolan-2-yl]propanoic acid

(2s)-2-[(2s,5r)-5-ethenyl-5-methyloxolan-2-yl]propanoic acid

C10H16O3 (184.1099386)


   

(3ar,4s,6as,8r,9r,9ar,9bs)-6a,8,9-trihydroxy-6,9-dimethyl-3-methylidene-2-oxo-3ah,4h,7h,8h,9ah,9bh-azuleno[4,5-b]furan-4-yl acetate

(3ar,4s,6as,8r,9r,9ar,9bs)-6a,8,9-trihydroxy-6,9-dimethyl-3-methylidene-2-oxo-3ah,4h,7h,8h,9ah,9bh-azuleno[4,5-b]furan-4-yl acetate

C17H22O7 (338.1365462)


   

4-hydroxy-1,5-dimethyl-9-oxo-8-oxatetracyclo[8.3.1.0²,⁶.0⁷,¹¹]tetradec-5-en-12-yl 3-methylbutanoate

4-hydroxy-1,5-dimethyl-9-oxo-8-oxatetracyclo[8.3.1.0²,⁶.0⁷,¹¹]tetradec-5-en-12-yl 3-methylbutanoate

C20H28O5 (348.1936638)


   

5,8-dihydroxy-5,8a-dimethyl-3-methylidene-3ah,4h,4ah,8h,9h,9ah-naphtho[2,3-b]furan-2-one

5,8-dihydroxy-5,8a-dimethyl-3-methylidene-3ah,4h,4ah,8h,9h,9ah-naphtho[2,3-b]furan-2-one

C15H20O4 (264.13615200000004)


   

(3as,5ar,6s,9bs)-6-hydroxy-5a,9-dimethyl-3-methylidene-3ah,4h,5h,6h,7h,9bh-naphtho[1,2-b]furan-2,8-dione

(3as,5ar,6s,9bs)-6-hydroxy-5a,9-dimethyl-3-methylidene-3ah,4h,5h,6h,7h,9bh-naphtho[1,2-b]furan-2,8-dione

C15H18O4 (262.1205028)


   

(3r,3ar,4s,10s,11ar)-4-hydroxy-3,6,10-trimethyl-3h,3ah,4h,5h,8h,10h,11h,11ah-cyclodeca[b]furan-2,9-dione

(3r,3ar,4s,10s,11ar)-4-hydroxy-3,6,10-trimethyl-3h,3ah,4h,5h,8h,10h,11h,11ah-cyclodeca[b]furan-2,9-dione

C15H22O4 (266.1518012)


   

3-[2,4-dihydroxy-3-(4-hydroxy-3-methylbut-2-en-1-yl)-5-(3-methylbut-2-en-1-yl)phenyl]prop-2-enoic acid

3-[2,4-dihydroxy-3-(4-hydroxy-3-methylbut-2-en-1-yl)-5-(3-methylbut-2-en-1-yl)phenyl]prop-2-enoic acid

C19H24O5 (332.1623654)


   

4-hydroxy-2h-[1,3]dioxolo[4,5-h]chromen-8-one

4-hydroxy-2h-[1,3]dioxolo[4,5-h]chromen-8-one

C10H6O5 (206.0215226)


   

(2e,4s)-4-ethenyl-2,5-dimethylhexa-2,5-dien-1-yl acetate

(2e,4s)-4-ethenyl-2,5-dimethylhexa-2,5-dien-1-yl acetate

C12H18O2 (194.1306728)


   

(1s,5r,8r,11s)-5,7,7,11-tetramethyltricyclo[6.3.0.0¹,⁵]undec-2-ene

(1s,5r,8r,11s)-5,7,7,11-tetramethyltricyclo[6.3.0.0¹,⁵]undec-2-ene

C15H24 (204.18779039999998)


   

6,8,9-trihydroxy-3,6,9-trimethyl-2-oxo-3h,3ah,4h,5h,8h,9ah,9bh-azuleno[4,5-b]furan-4-yl acetate

6,8,9-trihydroxy-3,6,9-trimethyl-2-oxo-3h,3ah,4h,5h,8h,9ah,9bh-azuleno[4,5-b]furan-4-yl acetate

C17H24O7 (340.1521954)


   

(3r,4s)-4-ethenyl-2,5-dimethylhexa-1,5-dien-3-ol

(3r,4s)-4-ethenyl-2,5-dimethylhexa-1,5-dien-3-ol

C10H16O (152.12010859999998)


   

(3e)-2,10-dihydroxy-2,6,10-trimethyldodeca-3,11-dien-5-one

(3e)-2,10-dihydroxy-2,6,10-trimethyldodeca-3,11-dien-5-one

C15H26O3 (254.1881846)


   

(1as,4ar,7s,7ar,7bs)-1,1,7-trimethyl-4-methylidene-octahydrocyclopropa[e]azulen-7-ol

(1as,4ar,7s,7ar,7bs)-1,1,7-trimethyl-4-methylidene-octahydrocyclopropa[e]azulen-7-ol

C15H24O (220.18270539999997)


   

8-(hydroxymethyl)-2,6,6-trimethyltricyclo[5.3.1.0¹,⁵]undecan-8-ol

8-(hydroxymethyl)-2,6,6-trimethyltricyclo[5.3.1.0¹,⁵]undecan-8-ol

C15H26O2 (238.1932696)


   

4,7-dihydroxy-3,6,10-trimethyl-3h,3ah,4h,7h,8h,9h,11ah-cyclodeca[b]furan-2-one

4,7-dihydroxy-3,6,10-trimethyl-3h,3ah,4h,7h,8h,9h,11ah-cyclodeca[b]furan-2-one

C15H22O4 (266.1518012)


   

6-hydroxy-7,8-dimethoxychromen-2-one

6-hydroxy-7,8-dimethoxychromen-2-one

C11H10O5 (222.052821)


   

(3as,5as,9br)-5a,9-dimethyl-3-methylidene-3ah,4h,6h,7h,8h,9bh-naphtho[1,2-b]furan-2,5-dione

(3as,5as,9br)-5a,9-dimethyl-3-methylidene-3ah,4h,6h,7h,8h,9bh-naphtho[1,2-b]furan-2,5-dione

C15H18O3 (246.1255878)


   

(1r,3s,5s,6r,7s,10s)-5-hydroxy-3,7,10,12-tetramethyl-2,9-dioxatetracyclo[9.3.0.0¹,³.0⁶,¹⁰]tetradec-11-en-8-one

(1r,3s,5s,6r,7s,10s)-5-hydroxy-3,7,10,12-tetramethyl-2,9-dioxatetracyclo[9.3.0.0¹,³.0⁶,¹⁰]tetradec-11-en-8-one

C16H22O4 (278.1518012)


   

(3r,3as,5ar,6r,9r,9as,9bs)-6,9-dihydroxy-3,5a,9-trimethyl-octahydro-3h-naphtho[1,2-b]furan-2-one

(3r,3as,5ar,6r,9r,9as,9bs)-6,9-dihydroxy-3,5a,9-trimethyl-octahydro-3h-naphtho[1,2-b]furan-2-one

C15H24O4 (268.1674504)


   

(4r,5s)-5-[(3s)-3-hydroxy-2-methyl-5-oxocyclopent-1-en-1-yl]-4-[(1s)-1-hydroxy-3-oxobutyl]-3-methylideneoxolan-2-one

(4r,5s)-5-[(3s)-3-hydroxy-2-methyl-5-oxocyclopent-1-en-1-yl]-4-[(1s)-1-hydroxy-3-oxobutyl]-3-methylideneoxolan-2-one

C15H18O6 (294.11033280000004)


   

(1s,3s,5s,6r,8as)-6-isopropyl-4,8a-dimethyl-2,3,5,6,7,8-hexahydro-1h-naphthalene-1,3,5-triol

(1s,3s,5s,6r,8as)-6-isopropyl-4,8a-dimethyl-2,3,5,6,7,8-hexahydro-1h-naphthalene-1,3,5-triol

C15H26O3 (254.1881846)


   

tetradec-6-en-8,10,12-triyn-3-ol

tetradec-6-en-8,10,12-triyn-3-ol

C14H16O (200.12010859999998)


   

3,10-dimethyl-6-methylidene-2,7-dioxo-3h,3ah,4h,5h,8h,9h,11ah-cyclodeca[b]furan-5-yl acetate

3,10-dimethyl-6-methylidene-2,7-dioxo-3h,3ah,4h,5h,8h,9h,11ah-cyclodeca[b]furan-5-yl acetate

C17H22O5 (306.1467162)


   

9-hydroxy-3,6,10-trimethyl-3h,3ah,4h,5h,8h,9h,11ah-cyclodeca[b]furan-2-one

9-hydroxy-3,6,10-trimethyl-3h,3ah,4h,5h,8h,9h,11ah-cyclodeca[b]furan-2-one

C15H22O3 (250.1568862)


   

(3r,3as,4r,7r,11as)-4,7-dihydroxy-3,10-dimethyl-6-methylidene-3h,3ah,4h,5h,7h,8h,9h,11ah-cyclodeca[b]furan-2-one

(3r,3as,4r,7r,11as)-4,7-dihydroxy-3,10-dimethyl-6-methylidene-3h,3ah,4h,5h,7h,8h,9h,11ah-cyclodeca[b]furan-2-one

C15H22O4 (266.1518012)


   

2-(5-ethenyl-5-methyloxolan-2-yl)-5-hydroxy-6-methylhepta-4,6-dien-3-one

2-(5-ethenyl-5-methyloxolan-2-yl)-5-hydroxy-6-methylhepta-4,6-dien-3-one

C15H22O3 (250.1568862)


   

1-(2-methylprop-1-en-1-yl)-2-(prop-1-en-2-yl)cyclopropane

1-(2-methylprop-1-en-1-yl)-2-(prop-1-en-2-yl)cyclopropane

C10H16 (136.1251936)


   

(3s,5s,5ar,6r,9as,9bs)-5,6-dihydroxy-3,5a-dimethyl-9-methylidene-octahydro-3h-naphtho[1,2-b]furan-2-one

(3s,5s,5ar,6r,9as,9bs)-5,6-dihydroxy-3,5a-dimethyl-9-methylidene-octahydro-3h-naphtho[1,2-b]furan-2-one

C15H22O4 (266.1518012)


   

4a,5-dimethyl-3-methylidene-3ah,4h,5h,6h,7h,8h,9ah-naphtho[2,3-b]furan-2-one

4a,5-dimethyl-3-methylidene-3ah,4h,5h,6h,7h,8h,9ah-naphtho[2,3-b]furan-2-one

C15H20O2 (232.14632200000003)


   

(3s,3ar,4s,5as,6r,9as,9bs)-4,6,9a-trihydroxy-3,5a-dimethyl-9-methylidene-octahydronaphtho[1,2-b]furan-2-one

(3s,3ar,4s,5as,6r,9as,9bs)-4,6,9a-trihydroxy-3,5a-dimethyl-9-methylidene-octahydronaphtho[1,2-b]furan-2-one

C15H22O5 (282.1467162)


   

(1r,2s,5s)-2-(hydroxymethyl)-5-isopropylbicyclo[3.1.0]hexan-2-ol

(1r,2s,5s)-2-(hydroxymethyl)-5-isopropylbicyclo[3.1.0]hexan-2-ol

C10H18O2 (170.1306728)


   

(1r,4s,7r,8r,11s)-2,2,4,8-tetramethyltricyclo[5.3.1.0⁴,¹¹]undecan-8-ol

(1r,4s,7r,8r,11s)-2,2,4,8-tetramethyltricyclo[5.3.1.0⁴,¹¹]undecan-8-ol

C15H26O (222.1983546)


   

(5r,8s)-2,5-dimethyl-5h,6h,7h,8h,9h-cyclohepta[b]pyridin-8-ol

(5r,8s)-2,5-dimethyl-5h,6h,7h,8h,9h-cyclohepta[b]pyridin-8-ol

C12H17NO (191.1310072)


   

(7s,9r,11ar)-7-hydroxy-3-(hydroxymethyl)-6,10-dimethyl-2-oxo-4h,7h,8h,9h,11ah-cyclodeca[b]furan-9-yl acetate

(7s,9r,11ar)-7-hydroxy-3-(hydroxymethyl)-6,10-dimethyl-2-oxo-4h,7h,8h,9h,11ah-cyclodeca[b]furan-9-yl acetate

C17H22O6 (322.1416312)


   

(3s,3ar,4s,9as,9br)-4-hydroxy-3,6,9-trimethyl-3h,3ah,4h,5h,9ah,9bh-azuleno[4,5-b]furan-2,7-dione

(3s,3ar,4s,9as,9br)-4-hydroxy-3,6,9-trimethyl-3h,3ah,4h,5h,9ah,9bh-azuleno[4,5-b]furan-2,7-dione

C15H18O4 (262.1205028)


   

(10e)-9-hydroxyoctadeca-10,12-dienoic acid

(10e)-9-hydroxyoctadeca-10,12-dienoic acid

C18H32O3 (296.2351322)


   

3-hydroxy-3,7,11-trimethyldodeca-1,6,10-trien-5-yl acetate

3-hydroxy-3,7,11-trimethyldodeca-1,6,10-trien-5-yl acetate

C17H28O3 (280.2038338)


   

(3as,10r,11ar)-6,10-dimethyl-3-methylidene-3ah,4h,5h,8h,10h,11h,11ah-cyclodeca[b]furan-2,9-dione

(3as,10r,11ar)-6,10-dimethyl-3-methylidene-3ah,4h,5h,8h,10h,11h,11ah-cyclodeca[b]furan-2,9-dione

C15H20O3 (248.14123700000002)


   

(1s,2s,6r,7s,10s,12r,14s)-10-hydroxy-9-methyl-5-methylidene-4-oxo-3,13-dioxatetracyclo[8.4.0.0²,⁶.0¹²,¹⁴]tetradec-8-en-7-yl acetate

(1s,2s,6r,7s,10s,12r,14s)-10-hydroxy-9-methyl-5-methylidene-4-oxo-3,13-dioxatetracyclo[8.4.0.0²,⁶.0¹²,¹⁴]tetradec-8-en-7-yl acetate

C16H18O6 (306.11033280000004)


   

4-isopropyl-1,6-dimethyl-1,2,4a,5,8,8a-hexahydronaphthalene

4-isopropyl-1,6-dimethyl-1,2,4a,5,8,8a-hexahydronaphthalene

C15H24 (204.18779039999998)


   

(3r,3as,4r,9ar,9bs)-4-hydroxy-3,6,9-trimethyl-3h,3ah,4h,5h,9ah,9bh-azuleno[4,5-b]furan-2,7-dione

(3r,3as,4r,9ar,9bs)-4-hydroxy-3,6,9-trimethyl-3h,3ah,4h,5h,9ah,9bh-azuleno[4,5-b]furan-2,7-dione

C15H18O4 (262.1205028)


   

3-[(2-methyl-3,5-dioxocyclopent-1-en-1-yl)methyl]-2-methylidene-6-oxoheptanoic acid

3-[(2-methyl-3,5-dioxocyclopent-1-en-1-yl)methyl]-2-methylidene-6-oxoheptanoic acid

C15H18O5 (278.1154178)


   

4,6a,9-trihydroxy-9-methyl-3,6-dimethylidene-3ah,4h,5h,9ah,9bh-azuleno[4,5-b]furan-2-one

4,6a,9-trihydroxy-9-methyl-3,6-dimethylidene-3ah,4h,5h,9ah,9bh-azuleno[4,5-b]furan-2-one

C15H18O5 (278.1154178)


   

1-(5-acetyl-2-hydroxy-4-methoxyphenyl)-3-hydroxy-3-methylbutan-1-one

1-(5-acetyl-2-hydroxy-4-methoxyphenyl)-3-hydroxy-3-methylbutan-1-one

C14H18O5 (266.1154178)


   

(2e,4e)-n-(2-methylpropyl)undeca-2,4-dien-8,10-diynimidic acid

(2e,4e)-n-(2-methylpropyl)undeca-2,4-dien-8,10-diynimidic acid

C15H19NO (229.14665639999998)


   
   

(3s,3as,7r,9s,11ar)-7,9-dihydroxy-3,10-dimethyl-6-methylidene-3h,3ah,4h,5h,7h,8h,9h,11ah-cyclodeca[b]furan-2-one

(3s,3as,7r,9s,11ar)-7,9-dihydroxy-3,10-dimethyl-6-methylidene-3h,3ah,4h,5h,7h,8h,9h,11ah-cyclodeca[b]furan-2-one

C15H22O4 (266.1518012)


   

6-hydroxy-3,5a,9-trimethyl-3h,3ah,4h,5h,6h,7h,9ah,9bh-naphtho[1,2-b]furan-2-one

6-hydroxy-3,5a,9-trimethyl-3h,3ah,4h,5h,6h,7h,9ah,9bh-naphtho[1,2-b]furan-2-one

C15H22O3 (250.1568862)


   

(3as,6r,6as,9ar,9bs)-6,9a-dihydroxy-6,9-dimethyl-3-methylidene-3ah,4h,5h,6ah,9bh-azuleno[4,5-b]furan-2,7-dione

(3as,6r,6as,9ar,9bs)-6,9a-dihydroxy-6,9-dimethyl-3-methylidene-3ah,4h,5h,6ah,9bh-azuleno[4,5-b]furan-2,7-dione

C15H18O5 (278.1154178)


   

3-hydroxy-3,5a,9-trimethyl-3ah,4h,5h,9bh-naphtho[1,2-b]furan-2,8-dione

3-hydroxy-3,5a,9-trimethyl-3ah,4h,5h,9bh-naphtho[1,2-b]furan-2,8-dione

C15H18O4 (262.1205028)


   

3-{4-hydroxy-3-[(2e)-4-hydroxy-3-methylbut-2-en-1-yl]-5-(3-methylbut-2-en-1-yl)phenyl}propanoic acid

3-{4-hydroxy-3-[(2e)-4-hydroxy-3-methylbut-2-en-1-yl]-5-(3-methylbut-2-en-1-yl)phenyl}propanoic acid

C19H26O4 (318.1830996)


   

(3s,3as,6ar,9s,9as,9bs)-6a,9-dihydroxy-3,9-dimethyl-6-methylidene-3h,3ah,4h,5h,9ah,9bh-azuleno[4,5-b]furan-2-one

(3s,3as,6ar,9s,9as,9bs)-6a,9-dihydroxy-3,9-dimethyl-6-methylidene-3h,3ah,4h,5h,9ah,9bh-azuleno[4,5-b]furan-2-one

C15H20O4 (264.13615200000004)


   

[9-(acetyloxy)-7-hydroxy-6,10-dimethyl-2-oxo-4h,7h,8h,9h,11ah-cyclodeca[b]furan-3-yl]methyl acetate

[9-(acetyloxy)-7-hydroxy-6,10-dimethyl-2-oxo-4h,7h,8h,9h,11ah-cyclodeca[b]furan-3-yl]methyl acetate

C19H24O7 (364.1521954)


   

[(1r,3s)-2,2-dimethyl-3-(2-methylprop-1-en-1-yl)cyclopropyl]methanol

[(1r,3s)-2,2-dimethyl-3-(2-methylprop-1-en-1-yl)cyclopropyl]methanol

C10H18O (154.1357578)


   

(2r,4e)-2-[(2r,5r)-5-ethenyl-5-methyloxolan-2-yl]-6-hydroxy-6-methylhept-4-en-3-one

(2r,4e)-2-[(2r,5r)-5-ethenyl-5-methyloxolan-2-yl]-6-hydroxy-6-methylhept-4-en-3-one

C15H24O3 (252.1725354)


   

(3r,6e)-tetradec-6-en-8,10,12-triyn-3-yl acetate

(3r,6e)-tetradec-6-en-8,10,12-triyn-3-yl acetate

C16H18O2 (242.1306728)


   

(1s,2s,4s)-4-isopropyl-1-methylcyclohexane-1,2,4-triol

(1s,2s,4s)-4-isopropyl-1-methylcyclohexane-1,2,4-triol

C10H20O3 (188.14123700000002)


   

2-hydroperoxy-10-hydroxy-2,6,10-trimethyldodeca-3,6,11-trien-5-one

2-hydroperoxy-10-hydroxy-2,6,10-trimethyldodeca-3,6,11-trien-5-one

C15H24O4 (268.1674504)


   

4-hydroxy-6-(2-hydroxypropan-2-yl)-4,8a-dimethyl-hexahydro-2h-naphthalen-1-one

4-hydroxy-6-(2-hydroxypropan-2-yl)-4,8a-dimethyl-hexahydro-2h-naphthalen-1-one

C15H26O3 (254.1881846)


   

(2z,5r,8s)-2-(hexa-2,4-diyn-1-ylidene)-1,6-dioxaspiro[4.5]dec-3-en-8-yl acetate

(2z,5r,8s)-2-(hexa-2,4-diyn-1-ylidene)-1,6-dioxaspiro[4.5]dec-3-en-8-yl acetate

C16H16O4 (272.1048536)


   

(1s,2z,4s,7r,8s,11s,12r)-12-hydroxy-2,7,11-trimethyl-5,14-dioxatricyclo[9.2.1.0⁴,⁸]tetradec-2-en-6-one

(1s,2z,4s,7r,8s,11s,12r)-12-hydroxy-2,7,11-trimethyl-5,14-dioxatricyclo[9.2.1.0⁴,⁸]tetradec-2-en-6-one

C15H22O4 (266.1518012)


   

(3s,3as,7r,11as)-7-hydroxy-3,10-dimethyl-6-methylidene-3h,3ah,4h,5h,7h,8h,9h,11ah-cyclodeca[b]furan-2-one

(3s,3as,7r,11as)-7-hydroxy-3,10-dimethyl-6-methylidene-3h,3ah,4h,5h,7h,8h,9h,11ah-cyclodeca[b]furan-2-one

C15H22O3 (250.1568862)


   

methyl (3r,21s,22s)-16-ethenyl-11-ethyl-12-(hydroxymethylidene)-17,21,26-trimethyl-4-oxo-22-(3-oxo-3-{[(2e,7s,11s)-3,7,11,15-tetramethylhexadec-2-en-1-yl]oxy}propyl)-7,23,24,25-tetraazahexacyclo[18.2.1.1⁵,⁸.1¹⁰,¹³.1¹⁵,¹⁸.0²,⁶]hexacosa-1,5(26),6,8,10,13(25),14,16,18(24),19-decaene-3-carboxylate

methyl (3r,21s,22s)-16-ethenyl-11-ethyl-12-(hydroxymethylidene)-17,21,26-trimethyl-4-oxo-22-(3-oxo-3-{[(2e,7s,11s)-3,7,11,15-tetramethylhexadec-2-en-1-yl]oxy}propyl)-7,23,24,25-tetraazahexacyclo[18.2.1.1⁵,⁸.1¹⁰,¹³.1¹⁵,¹⁸.0²,⁶]hexacosa-1,5(26),6,8,10,13(25),14,16,18(24),19-decaene-3-carboxylate

C55H72N4O6 (884.5451572)


   

(1s,4s)-1-methyl-4-[(2r)-6-methylhept-5-en-2-yl]-2,3-dioxabicyclo[2.2.2]oct-5-ene

(1s,4s)-1-methyl-4-[(2r)-6-methylhept-5-en-2-yl]-2,3-dioxabicyclo[2.2.2]oct-5-ene

C15H24O2 (236.1776204)


   

(3ar,8as,9as)-5,8a-dimethyl-3-methylidene-3ah,4h,9h,9ah-naphtho[2,3-b]furan-2,6-dione

(3ar,8as,9as)-5,8a-dimethyl-3-methylidene-3ah,4h,9h,9ah-naphtho[2,3-b]furan-2,6-dione

C15H16O3 (244.1099386)


   

5a,9-dimethyl-3-methylidene-3ah,4h,5h,9ah,9bh-naphtho[1,2-b]furan-2-one

5a,9-dimethyl-3-methylidene-3ah,4h,5h,9ah,9bh-naphtho[1,2-b]furan-2-one

C15H18O2 (230.1306728)


   

(4e)-5-[(1s)-1-hydroxy-2,6,6-trimethyl-4-oxocyclohex-2-en-1-yl]-3-methylpenta-2,4-dienoic acid

(4e)-5-[(1s)-1-hydroxy-2,6,6-trimethyl-4-oxocyclohex-2-en-1-yl]-3-methylpenta-2,4-dienoic acid

C15H20O4 (264.13615200000004)


   

n-[(2s)-1-[(2s)-2-{[hydroxy(phenyl)methylidene]amino}-3-phenylpropoxy]-1-oxo-3-phenylpropan-2-yl]benzenecarboximidic acid

n-[(2s)-1-[(2s)-2-{[hydroxy(phenyl)methylidene]amino}-3-phenylpropoxy]-1-oxo-3-phenylpropan-2-yl]benzenecarboximidic acid

C32H30N2O4 (506.220546)


   

4,9a-dihydroxy-3,5a-dimethyl-9-methylidene-2-oxo-octahydronaphtho[1,2-b]furan-6-yl 3-methylbutanoate

4,9a-dihydroxy-3,5a-dimethyl-9-methylidene-2-oxo-octahydronaphtho[1,2-b]furan-6-yl 3-methylbutanoate

C20H30O6 (366.204228)


   

(3s,5s,11as)-5-hydroxy-3,10-dimethyl-6-methylidene-3h,3ah,4h,5h,8h,9h,11ah-cyclodeca[b]furan-2,7-dione

(3s,5s,11as)-5-hydroxy-3,10-dimethyl-6-methylidene-3h,3ah,4h,5h,8h,9h,11ah-cyclodeca[b]furan-2,7-dione

C15H20O4 (264.13615200000004)


   

(2e)-3-[(2s)-2-[(2s)-1-hydroxypropan-2-yl]-7-(3-methylbut-2-en-1-yl)-2,3-dihydro-1-benzofuran-5-yl]prop-2-enoic acid

(2e)-3-[(2s)-2-[(2s)-1-hydroxypropan-2-yl]-7-(3-methylbut-2-en-1-yl)-2,3-dihydro-1-benzofuran-5-yl]prop-2-enoic acid

C19H24O4 (316.1674504)


   

(3s,3ar,5ar,6r,8s,9bs)-6,8-dihydroxy-3,5a,9-trimethyl-3h,3ah,4h,5h,6h,7h,8h,9bh-naphtho[1,2-b]furan-2-one

(3s,3ar,5ar,6r,8s,9bs)-6,8-dihydroxy-3,5a,9-trimethyl-3h,3ah,4h,5h,6h,7h,8h,9bh-naphtho[1,2-b]furan-2-one

C15H22O4 (266.1518012)


   

7-{[(1r,2s,6s,8ar)-6-hydroxy-1,2,5,5-tetramethyl-2,3,6,7,8,8a-hexahydronaphthalen-1-yl]methoxy}-6,8-dimethoxychromen-2-one

7-{[(1r,2s,6s,8ar)-6-hydroxy-1,2,5,5-tetramethyl-2,3,6,7,8,8a-hexahydronaphthalen-1-yl]methoxy}-6,8-dimethoxychromen-2-one

C26H34O6 (442.2355264)


   

(3e,6s)-6-hydroxy-6-methylocta-3,7-dien-2-one

(3e,6s)-6-hydroxy-6-methylocta-3,7-dien-2-one

C9H14O2 (154.09937440000002)


   

3,5,8-trimethylazuleno[6,5-b]furan-2,7-dione

3,5,8-trimethylazuleno[6,5-b]furan-2,7-dione

C15H12O3 (240.0786402)


   

(1ar,4r,7r,7bs)-1,1,4,7-tetramethyl-octahydro-1ah-cyclopropa[e]azulen-4-ol

(1ar,4r,7r,7bs)-1,1,4,7-tetramethyl-octahydro-1ah-cyclopropa[e]azulen-4-ol

C15H26O (222.1983546)


   

(8r)-8,12-dimethyl-4-methylidene-2,13-dioxatetracyclo[7.5.0.0¹,⁵.0¹²,¹⁴]tetradecan-3-one

(8r)-8,12-dimethyl-4-methylidene-2,13-dioxatetracyclo[7.5.0.0¹,⁵.0¹²,¹⁴]tetradecan-3-one

C15H20O3 (248.14123700000002)


   

(2z,4r)-4-ethenyl-2,5-dimethylhexa-2,5-dien-1-yl acetate

(2z,4r)-4-ethenyl-2,5-dimethylhexa-2,5-dien-1-yl acetate

C12H18O2 (194.1306728)


   

6-hydroxy-8a-methyl-3,5-dimethylidene-3ah,4h,4ah,6h,9h,9ah-naphtho[2,3-b]furan-2-one

6-hydroxy-8a-methyl-3,5-dimethylidene-3ah,4h,4ah,6h,9h,9ah-naphtho[2,3-b]furan-2-one

C15H18O3 (246.1255878)


   

8a-methyl-3-methylidene-3ah,4h,9h,9ah-naphtho[2,3-b]furan-2,6-dione

8a-methyl-3-methylidene-3ah,4h,9h,9ah-naphtho[2,3-b]furan-2,6-dione

C14H14O3 (230.0942894)


   

7-hydroxy-10-methyl-3,6-dimethylidene-2-oxo-3ah,4h,5h,7h,8h,9h,11ah-cyclodeca[b]furan-9-yl acetate

7-hydroxy-10-methyl-3,6-dimethylidene-2-oxo-3ah,4h,5h,7h,8h,9h,11ah-cyclodeca[b]furan-9-yl acetate

C17H22O5 (306.1467162)


   

(4e,6e)-tetradeca-4,6-dien-8,10,12-triyn-1-ol

(4e,6e)-tetradeca-4,6-dien-8,10,12-triyn-1-ol

C14H14O (198.1044594)


   

(1s,2s,5s,6r,7s,12r,14s)-5,9,14-trimethyl-4-oxo-3,13-dioxatetracyclo[8.4.0.0²,⁶.0¹²,¹⁴]tetradec-9-en-7-yl (2e)-2-methylbut-2-enoate

(1s,2s,5s,6r,7s,12r,14s)-5,9,14-trimethyl-4-oxo-3,13-dioxatetracyclo[8.4.0.0²,⁶.0¹²,¹⁴]tetradec-9-en-7-yl (2e)-2-methylbut-2-enoate

C20H26O5 (346.17801460000004)


   

3-isopropyl-3a,5a,8,8,11a,13a-hexamethyl-1h,2h,3h,4h,5h,5bh,6h,7h,7ah,9h,10h,11h,13h,13bh-cyclopenta[a]chrysen-9-ol

3-isopropyl-3a,5a,8,8,11a,13a-hexamethyl-1h,2h,3h,4h,5h,5bh,6h,7h,7ah,9h,10h,11h,13h,13bh-cyclopenta[a]chrysen-9-ol

C30H50O (426.386145)


   

8-[(3s)-4-hydroxy-3-methylbutoxy]-7-methoxy-5-[(3-methylbut-2-en-1-yl)oxy]chromen-2-one

8-[(3s)-4-hydroxy-3-methylbutoxy]-7-methoxy-5-[(3-methylbut-2-en-1-yl)oxy]chromen-2-one

C20H26O6 (362.17292960000003)


   

2-[(3s,4s,5r)-3-(hydroxymethyl)-5-(prop-1-en-2-yl)-1,2-dioxolan-4-yl]propan-2-yl acetate

2-[(3s,4s,5r)-3-(hydroxymethyl)-5-(prop-1-en-2-yl)-1,2-dioxolan-4-yl]propan-2-yl acetate

C12H20O5 (244.13106700000003)


   

6-ethenyl-5-hydroxy-3,6-dimethyl-7-(prop-1-en-2-yl)-hexahydro-1-benzofuran-2-one

6-ethenyl-5-hydroxy-3,6-dimethyl-7-(prop-1-en-2-yl)-hexahydro-1-benzofuran-2-one

C15H22O3 (250.1568862)


   

(3s,6e)-3,7,11-trimethyldodeca-1,6,10-trien-3-yl acetate

(3s,6e)-3,7,11-trimethyldodeca-1,6,10-trien-3-yl acetate

C17H28O2 (264.2089188)


   

(3as,11ar)-6,10-dimethyl-3-methylidene-3ah,4h,5h,8h,11h,11ah-cyclodeca[b]furan-2-one

(3as,11ar)-6,10-dimethyl-3-methylidene-3ah,4h,5h,8h,11h,11ah-cyclodeca[b]furan-2-one

C15H20O2 (232.14632200000003)


   

methyl 2-[(2r,4ar,8as)-4a-methyl-8-methylidene-octahydronaphthalen-2-yl]prop-2-enoate

methyl 2-[(2r,4ar,8as)-4a-methyl-8-methylidene-octahydronaphthalen-2-yl]prop-2-enoate

C16H24O2 (248.1776204)


   

3-[(3r,21s,22s)-16-ethenyl-11-ethyl-3-(methoxycarbonyl)-12,17,21,26-tetramethyl-4-oxo-7,23,24,25-tetraazahexacyclo[18.2.1.1⁵,⁸.1¹⁰,¹³.1¹⁵,¹⁸.0²,⁶]hexacosa-1(23),2(6),5(26),7,9,11,13,15,17,19-decaen-22-yl]propanoic acid

3-[(3r,21s,22s)-16-ethenyl-11-ethyl-3-(methoxycarbonyl)-12,17,21,26-tetramethyl-4-oxo-7,23,24,25-tetraazahexacyclo[18.2.1.1⁵,⁸.1¹⁰,¹³.1¹⁵,¹⁸.0²,⁶]hexacosa-1(23),2(6),5(26),7,9,11,13,15,17,19-decaen-22-yl]propanoic acid

C35H36N4O5 (592.2685566)


   

(2s)-3-methyl-2-(3-methylbut-2-en-1-yl)-2,5-dihydrofuran

(2s)-3-methyl-2-(3-methylbut-2-en-1-yl)-2,5-dihydrofuran

C10H16O (152.12010859999998)


   

7,11-dimethyl-2-oxatricyclo[6.3.1.0⁴,¹²]dodec-10-en-3-one

7,11-dimethyl-2-oxatricyclo[6.3.1.0⁴,¹²]dodec-10-en-3-one

C13H18O2 (206.1306728)


   

3,6,6a,9-tetramethyl-3h,3ah,4h,5h,6h,7h,8h-naphtho[4a,4-b]furan-2-one

3,6,6a,9-tetramethyl-3h,3ah,4h,5h,6h,7h,8h-naphtho[4a,4-b]furan-2-one

C16H24O2 (248.1776204)


   

(2e)-3-[(2s,3s)-2-(4-hydroxy-3-methoxyphenyl)-3-(hydroxymethyl)-2,3-dihydro-1,4-benzodioxin-6-yl]prop-2-enoic acid

(2e)-3-[(2s,3s)-2-(4-hydroxy-3-methoxyphenyl)-3-(hydroxymethyl)-2,3-dihydro-1,4-benzodioxin-6-yl]prop-2-enoic acid

C19H18O7 (358.10524780000003)


   

(3s,9z)-heptadeca-1,9,16-trien-4,6-diyn-3-ol

(3s,9z)-heptadeca-1,9,16-trien-4,6-diyn-3-ol

C17H22O (242.1670562)


   

(3r,3as,5ar,9r,9as,9bs)-9-hydroxy-3,5a,9-trimethyl-octahydro-3h-naphtho[1,2-b]furan-2-one

(3r,3as,5ar,9r,9as,9bs)-9-hydroxy-3,5a,9-trimethyl-octahydro-3h-naphtho[1,2-b]furan-2-one

C15H24O3 (252.1725354)


   

(1s,2r,4s,5r,8s,9r,12s,13r)-2-hydroxy-1,5,9-trimethyl-11,14,15-trioxatetracyclo[10.2.1.0⁴,¹³.0⁸,¹³]pentadecan-10-one

(1s,2r,4s,5r,8s,9r,12s,13r)-2-hydroxy-1,5,9-trimethyl-11,14,15-trioxatetracyclo[10.2.1.0⁴,¹³.0⁸,¹³]pentadecan-10-one

C15H22O5 (282.1467162)


   

(4s)-3,3,6-trimethylhepta-1,5-dien-4-yl propanoate

(4s)-3,3,6-trimethylhepta-1,5-dien-4-yl propanoate

C13H22O2 (210.1619712)


   

(3r,3ar,4s,5ar,6r,9as,9br)-4,6-dihydroxy-3,5a-dimethyl-9-methylidene-octahydro-3h-naphtho[1,2-b]furan-2-one

(3r,3ar,4s,5ar,6r,9as,9br)-4,6-dihydroxy-3,5a-dimethyl-9-methylidene-octahydro-3h-naphtho[1,2-b]furan-2-one

C15H22O4 (266.1518012)


   

(6r,7e,9e)-heptadeca-1,7,9-trien-11,13,15-triyn-6-ol

(6r,7e,9e)-heptadeca-1,7,9-trien-11,13,15-triyn-6-ol

C17H18O (238.1357578)


   

(2s,3r)-2-[(1e)-4-(thiophen-2-yl)but-1-en-3-yn-1-yl]oxolan-3-ol

(2s,3r)-2-[(1e)-4-(thiophen-2-yl)but-1-en-3-yn-1-yl]oxolan-3-ol

C12H12O2S (220.0557972)


   

5,7-dihydroxy-2-(4-hydroxyphenyl)-6,8-bis[(2r,3r,4r,5s,6r)-3,4,5-trihydroxy-6-(hydroxymethyl)oxan-2-yl]chromen-4-one

5,7-dihydroxy-2-(4-hydroxyphenyl)-6,8-bis[(2r,3r,4r,5s,6r)-3,4,5-trihydroxy-6-(hydroxymethyl)oxan-2-yl]chromen-4-one

C27H30O15 (594.158463)


   

(5r)-5-[(3s)-3-hydroxy-3-methylpent-4-en-1-yl]-4-methyl-5h-furan-2-one

(5r)-5-[(3s)-3-hydroxy-3-methylpent-4-en-1-yl]-4-methyl-5h-furan-2-one

C11H16O3 (196.1099386)


   

4-{4,6,10-trioxatricyclo[7.3.0.0³,⁷]dodeca-1,3(7),8,11-tetraen-11-yl}benzene-1,3-diol

4-{4,6,10-trioxatricyclo[7.3.0.0³,⁷]dodeca-1,3(7),8,11-tetraen-11-yl}benzene-1,3-diol

C15H10O5 (270.052821)


   

(3as,5ar)-1-[(4e)-5,6-dimethylhept-4-en-2-yl]-3a,3b,6,6,9a-pentamethyl-2h,3h,4h,5h,5ah,7h,8h,9h,9bh,10h,11h-cyclopenta[a]phenanthren-7-yl acetate

(3as,5ar)-1-[(4e)-5,6-dimethylhept-4-en-2-yl]-3a,3b,6,6,9a-pentamethyl-2h,3h,4h,5h,5ah,7h,8h,9h,9bh,10h,11h-cyclopenta[a]phenanthren-7-yl acetate

C33H54O2 (482.41235839999996)


   

4-(hexa-2,4-diyn-1-ylidene)-3,6-dioxaspiro[bicyclo[3.1.0]hexane-2,2'-oxan]-5'-yl acetate

4-(hexa-2,4-diyn-1-ylidene)-3,6-dioxaspiro[bicyclo[3.1.0]hexane-2,2'-oxan]-5'-yl acetate

C16H16O5 (288.0997686)


   

(1s,3r,7r,9r,12r,13r)-12-hydroxy-9,13-dimethyl-4-methylidene-6,14-dioxatetracyclo[7.5.0.0¹,¹³.0³,⁷]tetradecan-5-one

(1s,3r,7r,9r,12r,13r)-12-hydroxy-9,13-dimethyl-4-methylidene-6,14-dioxatetracyclo[7.5.0.0¹,¹³.0³,⁷]tetradecan-5-one

C15H20O4 (264.13615200000004)


   

(2s)-5-hydroxy-2-(4-hydroxy-3-methoxyphenyl)-7-methoxy-2,3-dihydro-1-benzopyran-4-one

(2s)-5-hydroxy-2-(4-hydroxy-3-methoxyphenyl)-7-methoxy-2,3-dihydro-1-benzopyran-4-one

C17H16O6 (316.0946836)


   

(1r,4r,6s,10s)-4,12,12-trimethyl-9-methylidene-5-oxatricyclo[8.2.0.0⁴,⁶]dodecane

(1r,4r,6s,10s)-4,12,12-trimethyl-9-methylidene-5-oxatricyclo[8.2.0.0⁴,⁶]dodecane

C15H24O (220.18270539999997)


   

(1r,7ar,11br,13br)-3a,5a,5b,8,8,11a-hexamethyl-1-(prop-1-en-2-yl)-hexadecahydrocyclopenta[a]chrysen-9-yl acetate

(1r,7ar,11br,13br)-3a,5a,5b,8,8,11a-hexamethyl-1-(prop-1-en-2-yl)-hexadecahydrocyclopenta[a]chrysen-9-yl acetate

C32H52O2 (468.3967092)


   

(2s,3s,4s,5r,6s)-3,4,5-trihydroxy-6-{[5-hydroxy-4-oxo-2-(3,4,5-trimethoxyphenyl)chromen-7-yl]oxy}oxane-2-carboxylic acid

(2s,3s,4s,5r,6s)-3,4,5-trihydroxy-6-{[5-hydroxy-4-oxo-2-(3,4,5-trimethoxyphenyl)chromen-7-yl]oxy}oxane-2-carboxylic acid

C24H24O13 (520.1216853999999)


   
   

7,7-dimethylbicyclo[4.1.0]hept-3-ene-3-carbaldehyde

7,7-dimethylbicyclo[4.1.0]hept-3-ene-3-carbaldehyde

C10H14O (150.1044594)


   

6-hydroxy-5a,9-dimethyl-3-methylidene-octahydronaphtho[1,2-b]furan-2,8-dione

6-hydroxy-5a,9-dimethyl-3-methylidene-octahydronaphtho[1,2-b]furan-2,8-dione

C15H20O4 (264.13615200000004)


   

6,6,8,9-tetramethyl-2-oxatetracyclo[6.4.0.0¹,³.0⁵,⁷]dodecane

6,6,8,9-tetramethyl-2-oxatetracyclo[6.4.0.0¹,³.0⁵,⁷]dodecane

C15H24O (220.18270539999997)


   

3-methyl-5-{1,3,3-trimethyl-7-oxabicyclo[2.2.1]heptan-2-yl}pent-1-en-3-ol

3-methyl-5-{1,3,3-trimethyl-7-oxabicyclo[2.2.1]heptan-2-yl}pent-1-en-3-ol

C15H26O2 (238.1932696)


   

(3as,9s,11ar)-9-hydroxy-6,10-dimethyl-3-methylidene-3ah,4h,5h,8h,9h,11ah-cyclodeca[b]furan-2-one

(3as,9s,11ar)-9-hydroxy-6,10-dimethyl-3-methylidene-3ah,4h,5h,8h,9h,11ah-cyclodeca[b]furan-2-one

C15H20O3 (248.14123700000002)


   

8-hydroxy-6,10-dimethyl-3-methylidene-3ah,4h,5h,8h,9h,11ah-cyclodeca[b]furan-2-one

8-hydroxy-6,10-dimethyl-3-methylidene-3ah,4h,5h,8h,9h,11ah-cyclodeca[b]furan-2-one

C15H20O3 (248.14123700000002)


   

4-(prop-1-en-1-yl)-1,1-bis(prop-1-en-2-yl)cyclohexane

4-(prop-1-en-1-yl)-1,1-bis(prop-1-en-2-yl)cyclohexane

C15H24 (204.18779039999998)


   

citronellol, (+-)-

citronellol, (+-)-

C10H20O (156.151407)


   

2-(hydroxymethyl)-7,7-dimethylbicyclo[3.1.1]hept-2-en-6-ol

2-(hydroxymethyl)-7,7-dimethylbicyclo[3.1.1]hept-2-en-6-ol

C10H16O2 (168.1150236)


   

(3r,3as,6ar,7r,9ar,9bs)-7-hydroxy-3,9-dimethyl-6-methylidene-3h,3ah,4h,5h,6ah,7h,9ah,9bh-azuleno[4,5-b]furan-2-one

(3r,3as,6ar,7r,9ar,9bs)-7-hydroxy-3,9-dimethyl-6-methylidene-3h,3ah,4h,5h,6ah,7h,9ah,9bh-azuleno[4,5-b]furan-2-one

C15H20O3 (248.14123700000002)


   

(2s,3r,4s,5r,6s)-2-(hydroxymethyl)-6-{4-[(1e)-3-hydroxyprop-1-en-1-yl]-2,6-dimethoxyphenoxy}oxane-3,4,5-triol

(2s,3r,4s,5r,6s)-2-(hydroxymethyl)-6-{4-[(1e)-3-hydroxyprop-1-en-1-yl]-2,6-dimethoxyphenoxy}oxane-3,4,5-triol

C17H24O9 (372.14202539999997)


   

8-(4-hydroxy-3-methylbutoxy)-7-methoxychromen-2-one

8-(4-hydroxy-3-methylbutoxy)-7-methoxychromen-2-one

C15H18O5 (278.1154178)


   

6-hydroxy-3,6,9-trimethyl-2-oxo-3h,3ah,4h,5h,6ah,7h,9ah,9bh-azuleno[4,5-b]furan-4-yl 2-methylbut-2-enoate

6-hydroxy-3,6,9-trimethyl-2-oxo-3h,3ah,4h,5h,6ah,7h,9ah,9bh-azuleno[4,5-b]furan-4-yl 2-methylbut-2-enoate

C20H28O5 (348.1936638)


   

4-methyl-5-[4-methyl-5-oxo-3-(3-oxobutyl)oxolan-2-yl]cyclopent-4-ene-1,3-dione

4-methyl-5-[4-methyl-5-oxo-3-(3-oxobutyl)oxolan-2-yl]cyclopent-4-ene-1,3-dione

C15H18O5 (278.1154178)


   

(1s,2s,3s,7r,8s)-3-hydroxy-2,6,6,11-tetramethyltricyclo[5.4.0.0²,⁸]undec-10-en-9-one

(1s,2s,3s,7r,8s)-3-hydroxy-2,6,6,11-tetramethyltricyclo[5.4.0.0²,⁸]undec-10-en-9-one

C15H22O2 (234.1619712)


   

4-ethenyl-2,5-dimethylhexa-2,5-dien-1-yl acetate

4-ethenyl-2,5-dimethylhexa-2,5-dien-1-yl acetate

C12H18O2 (194.1306728)


   

6,9a-dihydroxy-3,5a-dimethyl-9-methylidene-2-oxo-octahydronaphtho[1,2-b]furan-4-yl 3-methylbutanoate

6,9a-dihydroxy-3,5a-dimethyl-9-methylidene-2-oxo-octahydronaphtho[1,2-b]furan-4-yl 3-methylbutanoate

C20H30O6 (366.204228)


   

(1s,3r,5s)-3-hydroxy-7,7-dimethyl-2-methylidenebicyclo[3.1.1]heptan-6-one

(1s,3r,5s)-3-hydroxy-7,7-dimethyl-2-methylidenebicyclo[3.1.1]heptan-6-one

C10H14O2 (166.09937440000002)


   

8,12-dimethyl-4-methylidene-2,13-dioxatetracyclo[7.5.0.0¹,⁵.0¹²,¹⁴]tetradecane

8,12-dimethyl-4-methylidene-2,13-dioxatetracyclo[7.5.0.0¹,⁵.0¹²,¹⁴]tetradecane

C15H22O2 (234.1619712)


   
   

5,7-dihydroxy-2-(4-hydroxyphenyl)-8-{[(2s,3r,4s,5s,6r)-3,4,5-trihydroxy-6-(hydroxymethyl)oxan-2-yl]oxy}chromen-4-one

5,7-dihydroxy-2-(4-hydroxyphenyl)-8-{[(2s,3r,4s,5s,6r)-3,4,5-trihydroxy-6-(hydroxymethyl)oxan-2-yl]oxy}chromen-4-one

C21H20O11 (448.100557)


   

(3ar,4s,6r,6ar,9ar,9br)-4,6-dihydroxy-6,9-dimethyl-3-methylidene-3ah,4h,5h,6ah,7h,9ah,9bh-azuleno[4,5-b]furan-2-one

(3ar,4s,6r,6ar,9ar,9br)-4,6-dihydroxy-6,9-dimethyl-3-methylidene-3ah,4h,5h,6ah,7h,9ah,9bh-azuleno[4,5-b]furan-2-one

C15H20O4 (264.13615200000004)