Scopoletin

7-hydroxy-6-methoxy-2H-chromen-2-one

C10H8O4 (192.0423)


Scopoletin is a hydroxycoumarin that is umbelliferone bearing a methoxy substituent at position 6. It has a role as a plant growth regulator and a plant metabolite. It is functionally related to an umbelliferone. Scopoletin is a natural product found in Ficus auriculata, Haplophyllum cappadocicum, and other organisms with data available. Scopoletin is a coumarin compound found in several plants including those in the genus Scopolia and the genus Brunfelsia, as well as chicory (Cichorium), redstem wormwood (Artemisia scoparia), stinging nettle (Urtica dioica), passion flower (Passiflora), noni (Morinda citrifolia fruit) and European black nightshade (Solanum nigrum) that is comprised of umbelliferone with a methoxy group substituent at position 6. Scopoletin is used to standardize and establish pharmacokinetic properties for products derived from the plants that produce it, such as noni extract. Although the mechanism(s) of action have not yet been established, this agent has potential antineoplastic, antidopaminergic, antioxidant, anti-inflammatory and anticholinesterase effects. Plant growth factor derived from the root of Scopolia carniolica or Scopolia japonica. See also: Arnica montana Flower (part of); Lycium barbarum fruit (part of); Viburnum opulus root (part of). Isolated from Angelica acutiloba (Dong Dang Gui). Scopoletin is found in many foods, some of which are lambsquarters, lemon, sunflower, and sherry. Scopoletin is found in anise. Scopoletin is isolated from Angelica acutiloba (Dong Dang Gui A hydroxycoumarin that is umbelliferone bearing a methoxy substituent at position 6. Acquisition and generation of the data is financially supported in part by CREST/JST. [Raw Data] CBA72_Scopoletin_pos_20eV.txt [Raw Data] CBA72_Scopoletin_pos_40eV.txt [Raw Data] CBA72_Scopoletin_neg_30eV.txt [Raw Data] CBA72_Scopoletin_neg_50eV.txt [Raw Data] CBA72_Scopoletin_pos_50eV.txt [Raw Data] CBA72_Scopoletin_pos_10eV.txt [Raw Data] CBA72_Scopoletin_neg_40eV.txt [Raw Data] CBA72_Scopoletin_neg_10eV.txt [Raw Data] CBA72_Scopoletin_pos_30eV.txt [Raw Data] CBA72_Scopoletin_neg_20eV.txt Scopoletin. CAS Common Chemistry. CAS, a division of the American Chemical Society, n.d. https://commonchemistry.cas.org/detail?cas_rn=92-61-5 (retrieved 2024-07-12) (CAS RN: 92-61-5). Licensed under the Attribution-Noncommercial 4.0 International License (CC BY-NC 4.0). Scopoletin is an inhibitor of acetylcholinesterase (AChE). Scopoletin is an inhibitor of acetylcholinesterase (AChE).

   

Lovastatin

[(1S,3R,7S,8S,8aR)-8-[2-[(2R,4R)-4-hydroxy-6-oxooxan-2-yl]ethyl]-3,7-dimethyl-1,2,3,7,8,8a-hexahydronaphthalen-1-yl] (2S)-2-methylbutanoate

C24H36O5 (404.2563)


Lovastatin is a fatty acid ester that is mevastatin carrying an additional methyl group on the carbobicyclic skeleton. It is used in as an anticholesteremic drug and has been found in fungal species such as Aspergillus terreus and Pleurotus ostreatus (oyster mushroom). It has a role as an Aspergillus metabolite, a prodrug, an anticholesteremic drug and an antineoplastic agent. It is a polyketide, a statin (naturally occurring), a member of hexahydronaphthalenes, a delta-lactone and a fatty acid ester. It is functionally related to a (S)-2-methylbutyric acid and a mevastatin. Lovastatin, also known as the brand name product Mevacor, is a lipid-lowering drug and fungal metabolite derived synthetically from a fermentation product of Aspergillus terreus. Originally named Mevinolin, lovastatin belongs to the statin class of medications, which are used to lower the risk of cardiovascular disease and manage abnormal lipid levels by inhibiting the endogenous production of cholesterol in the liver. More specifically, statin medications competitively inhibit the enzyme hydroxymethylglutaryl-coenzyme A (HMG-CoA) Reductase, which catalyzes the conversion of HMG-CoA to mevalonic acid and is the third step in a sequence of metabolic reactions involved in the production of several compounds involved in lipid metabolism and transport including cholesterol, low-density lipoprotein (LDL) (sometimes referred to as "bad cholesterol"), and very low-density lipoprotein (VLDL). Prescribing of statin medications is considered standard practice following any cardiovascular events and for people with a moderate to high risk of development of CVD, such as those with Type 2 Diabetes. The clear evidence of the benefit of statin use coupled with very minimal side effects or long term effects has resulted in this class becoming one of the most widely prescribed medications in North America. Lovastatin and other drugs from the statin class of medications including [atorvastatin], [pravastatin], [rosuvastatin], [fluvastatin], and [simvastatin] are considered first-line options for the treatment of dyslipidemia. Increasing use of the statin class of drugs is largely due to the fact that cardiovascular disease (CVD), which includes heart attack, atherosclerosis, angina, peripheral artery disease, and stroke, has become a leading cause of death in high-income countries and a major cause of morbidity around the world. Elevated cholesterol levels, and in particular, elevated low-density lipoprotein (LDL) levels, are an important risk factor for the development of CVD. Use of statins to target and reduce LDL levels has been shown in a number of landmark studies to significantly reduce the risk of development of CVD and all-cause mortality. Statins are considered a cost-effective treatment option for CVD due to their evidence of reducing all-cause mortality including fatal and non-fatal CVD as well as the need for surgical revascularization or angioplasty following a heart attack. Evidence has shown that even for low-risk individuals (with <10\\\\% risk of a major vascular event occurring within 5 years) statins cause a 20\\\\%-22\\\\% relative reduction in major cardiovascular events (heart attack, stroke, coronary revascularization, and coronary death) for every 1 mmol/L reduction in LDL without any significant side effects or risks. While all statin medications are considered equally effective from a clinical standpoint, [rosuvastatin] is considered the most potent; doses of 10 to 40mg [rosuvastatin] per day were found in clinical studies to result in a 45.8\\\\% to 54.6\\\\% decrease in LDL cholesterol levels, while lovastatin has been found to have an average decrease in LDL-C of 25-40\\\\%. Potency is thought to correlate to tissue permeability as the more lipophilic statins such as lovastatin are thought to enter endothelial cells by passive diffusion, as opposed to hydrophilic statins such as [pravastatin] and [rosuvastatin] which are taken up into hepatocytes through OATP1B1 (org... Lovastatin is a cholesterol-lowering agent that belongs to the class of medications called statins. It was the second agent of this class discovered. It was discovered by Alfred Alberts and his team at Merck in 1978 after screening only 18 compounds over 2 weeks. The agent, also known as mevinolin, was isolated from the fungi Aspergillus terreus. Research on this compound was suddenly shut down in 1980 and the drug was not approved until 1987. Interesting, Akira Endo at Sankyo Co. (Japan) patented lovastatin isolated from Monascus ruber four months before Merck. Lovastatin was found to be 2 times more potent than its predecessor, mevastatin, the first discovered statin. Like mevastatin, lovastatin is structurally similar to hydroxymethylglutarate (HMG), a substituent of HMG-Coenzyme A (HMG-CoA), a substrate of the cholesterol biosynthesis pathway via the mevalonic acid pathway. Lovastatin is a competitive inhibitor of HMG-CoA reductase with a binding affinity 20,000 times greater than HMG-CoA. Lovastatin differs structurally from mevastatin by a single methyl group at the 6 position. Lovastatin is a prodrug that is activated by in vivo hydrolysis of the lactone ring. It, along with mevastatin, has served as one of the lead compounds for the development of the synthetic compounds used today. A fatty acid ester that is mevastatin carrying an additional methyl group on the carbobicyclic skeleton. It is used in as an anticholesteremic drug and has been found in fungal species such as Aspergillus terreus and Pleurotus ostreatus (oyster mushroom). C - Cardiovascular system > C10 - Lipid modifying agents > C10A - Lipid modifying agents, plain > C10AA - Hmg coa reductase inhibitors D057847 - Lipid Regulating Agents > D000960 - Hypolipidemic Agents > D000924 - Anticholesteremic Agents D004791 - Enzyme Inhibitors > D019161 - Hydroxymethylglutaryl-CoA Reductase Inhibitors C78276 - Agent Affecting Digestive System or Metabolism > C29703 - Antilipidemic Agent C471 - Enzyme Inhibitor > C1655 - HMG-CoA Reductase Inhibitor D009676 - Noxae > D000963 - Antimetabolites CONFIDENCE standard compound; EAWAG_UCHEM_ID 3139 CONFIDENCE standard compound; INTERNAL_ID 2212 Lovastatin is a cell-permeable HMG-CoA reductase inhibitor used to lower cholesterol. Lovastatin is a cell-permeable HMG-CoA reductase inhibitor used to lower cholesterol.

   

Genistein

Genistein, Pharmaceutical Secondary Standard; Certified Reference Material

C15H10O5 (270.0528)


Genistein is a 7-hydroxyisoflavone with additional hydroxy groups at positions 5 and 4. It is a phytoestrogenic isoflavone with antioxidant properties. It has a role as an antineoplastic agent, a tyrosine kinase inhibitor, an EC 5.99.1.3 [DNA topoisomerase (ATP-hydrolysing)] inhibitor, a phytoestrogen, a plant metabolite, a geroprotector and a human urinary metabolite. It is a conjugate acid of a genistein(1-). An isoflavonoid derived from soy products. It inhibits protein-tyrosine kinase and topoisomerase-II (DNA topoisomerases, type II) activity and is used as an antineoplastic and antitumor agent. Experimentally, it has been shown to induce G2 phase arrest in human and murine cell lines. Additionally, genistein has antihelmintic activity. It has been determined to be the active ingredient in Felmingia vestita, which is a plant traditionally used against worms. It has shown to be effective in the treatment of common liver fluke, pork trematode and poultry cestode. Further, genistein is a phytoestrogen which has selective estrogen receptor modulator properties. It has been investigated in clinical trials as an alternative to classical hormone therapy to help prevent cardiovascular disease in postmenopausal women. Natural sources of genistein include tofu, fava beans, soybeans, kudzu, and lupin. Genistein is a natural product found in Pterocarpus indicus, Ficus septica, and other organisms with data available. Genistein is a soy-derived isoflavone and phytoestrogen with antineoplastic activity. Genistein binds to and inhibits protein-tyrosine kinase, thereby disrupting signal transduction and inducing cell differentiation. This agent also inhibits topoisomerase-II, leading to DNA fragmentation and apoptosis, and induces G2/M cell cycle arrest. Genistein exhibits antioxidant, antiangiogenic, and immunosuppressive activities. (NCI04) Genistein is one of several known isoflavones. Isoflavones compounds, such as genistein and daidzein, are found in a number of plants, but soybeans and soy products like tofu and textured vegetable protein are the primary food source. Genistein is a natural bioactive compound derived from legumes and has drawn because of its potentially beneficial effects on some human degenerative diseases. It has a weak estrogenic effect and is a well-known non-specific tyrosine kinase inhibitor at pharmacological doses. Epidemiological studies show that genistein intake is inversely associated with the risk of cardiovascular diseases. Data suggests a protective role of genistein in cardiovascular events. However, the mechanisms of the genistein action on vascular protective effects are unclear. Past extensive studies exploring its hypolipidemic effect resulted in contradictory data. Genistein also is a relatively poor antioxidant. However, genistein protects against pro-inflammatory factor-induced vascular endothelial barrier dysfunction and inhibits leukocyte-endothelium interaction, thereby modulating vascular inflammation, a major event in the pathogenesis of atherosclerosis. Genistein exerts a non-genomic action by targeting on important signaling molecules in vascular endothelial cells (ECs). Genistein rapidly activates endothelial nitric oxide synthase and production of nitric oxide in ECs. This genistein effect is novel since it is independent of its known effects, but mediated by the cyclic adenosine monophosphate/protein kinase A (cAMP/PKA) cascade. Genistein directly stimulates the plasma membrane-associated adenylate cyclases, leading to activation of the cAMP signaling pathway. In addition, genistein activates peroxisome proliferator-activated receptors, ligand-activated nuclear receptors important to normal vascular function. Furthermore, genistein reduces reactive oxygen species (ROS) by attenuating the expression of ROS-producing enzymes. These findings reveal the roles for genistein in the regulation of vascular function and provide a basis for further investigating its therapeutic potential f... Genistein is one of several known isoflavones. Isoflavones compounds, such as genistein and daidzein, are found in a number of plants, but soybeans and soy products like tofu and textured vegetable protein are the primary food source. Genistein is a natural bioactive compound derived from legumes and has drawn because of its potentially beneficial effects on some human degenerative diseases. It has a weak estrogenic effect and is a well-known non-specific tyrosine kinase inhibitor at pharmacological doses. Epidemiological studies show that genistein intake is inversely associated with the risk of cardiovascular diseases. Data suggests a protective role of genistein in cardiovascular events. However, the mechanisms of the genistein action on vascular protective effects are unclear. Past extensive studies exploring its hypolipidemic effect resulted in contradictory data. Genistein also is a relatively poor antioxidant. However, genistein protects against pro-inflammatory factor-induced vascular endothelial barrier dysfunction and inhibits leukocyte-endothelium interaction, thereby modulating vascular inflammation, a major event in the pathogenesis of atherosclerosis. Genistein exerts a non-genomic action by targeting on important signaling molecules in vascular endothelial cells (ECs). Genistein rapidly activates endothelial nitric oxide synthase and production of nitric oxide in ECs. This genistein effect is novel since it is independent of its known effects, but mediated by the cyclic adenosine monophosphate/protein kinase A (cAMP/PKA) cascade. Genistein directly stimulates the plasma membrane-associated adenylate cyclases, leading to activation of the cAMP signaling pathway. In addition, genistein activates peroxisome proliferator-activated receptors, ligand-activated nuclear receptors important to normal vascular function. Furthermore, genistein reduces reactive oxygen species (ROS) by attenuating the expression of ROS-producing enzymes. These findings reveal the roles for genistein in the regulation of vascular function and provide a basis for further investigating its therapeutic potential for inflammatory-related vascular disease. (PMID:17979711). Genistein is a biomarker for the consumption of soy beans and other soy products. Genistein is a phenolic compound belonging to the isoflavonoid group. Isoflavonoids are found mainly in soybean. Genistein and daidzein (an other isoflavonoid) represent the major phytochemicals found in this plant. Health benefits (e.g. reduced risk for certain cancers and diseases of old age) associated to soya products consumption have been observed in East Asian populations and several epidemiological studies. This association has been linked to the action of isoflavonoids. With a chemical structure similar to the hormone 17-b-estradiol, soy isoflavones are able to interact with the estrogen receptor. They also possess numerous biological activities. (PMID: 15540649). Genistein is a biomarker for the consumption of soy beans and other soy products. A 7-hydroxyisoflavone with additional hydroxy groups at positions 5 and 4. It is a phytoestrogenic isoflavone with antioxidant properties. C274 - Antineoplastic Agent > C163758 - Targeted Therapy Agent > C1821 - Selective Estrogen Receptor Modulator D006730 - Hormones, Hormone Substitutes, and Hormone Antagonists > D006728 - Hormones > D004967 - Estrogens C274 - Antineoplastic Agent > C129818 - Antineoplastic Hormonal/Endocrine Agent > C481 - Antiestrogen C471 - Enzyme Inhibitor > C1404 - Protein Kinase Inhibitor > C1967 - Tyrosine Kinase Inhibitor C147908 - Hormone Therapy Agent > C548 - Therapeutic Hormone > C483 - Therapeutic Estrogen D004791 - Enzyme Inhibitors > D047428 - Protein Kinase Inhibitors D020011 - Protective Agents > D016588 - Anticarcinogenic Agents C274 - Antineoplastic Agent > C1742 - Angiogenesis Inhibitor C147908 - Hormone Therapy Agent > C547 - Hormone Antagonist D000970 - Antineoplastic Agents C1892 - Chemopreventive Agent CONFIDENCE standard compound; INTERNAL_ID 765; DATASET 20200303_ENTACT_RP_MIX507; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 5085; ORIGINAL_PRECURSOR_SCAN_NO 5082 CONFIDENCE standard compound; INTERNAL_ID 765; DATASET 20200303_ENTACT_RP_MIX507; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 8554; ORIGINAL_PRECURSOR_SCAN_NO 8550 CONFIDENCE standard compound; INTERNAL_ID 765; DATASET 20200303_ENTACT_RP_MIX507; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 5097; ORIGINAL_PRECURSOR_SCAN_NO 5094 ORIGINAL_ACQUISITION_NO 5097; CONFIDENCE standard compound; INTERNAL_ID 765; DATASET 20200303_ENTACT_RP_MIX507; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_PRECURSOR_SCAN_NO 5094 CONFIDENCE standard compound; INTERNAL_ID 765; DATASET 20200303_ENTACT_RP_MIX507; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 5104; ORIGINAL_PRECURSOR_SCAN_NO 5099 CONFIDENCE standard compound; INTERNAL_ID 765; DATASET 20200303_ENTACT_RP_MIX507; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 8558; ORIGINAL_PRECURSOR_SCAN_NO 8556 CONFIDENCE standard compound; INTERNAL_ID 765; DATASET 20200303_ENTACT_RP_MIX507; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 5082; ORIGINAL_PRECURSOR_SCAN_NO 5079 CONFIDENCE standard compound; INTERNAL_ID 765; DATASET 20200303_ENTACT_RP_MIX507; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 8540; ORIGINAL_PRECURSOR_SCAN_NO 8539 CONFIDENCE standard compound; INTERNAL_ID 765; DATASET 20200303_ENTACT_RP_MIX507; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 8556; ORIGINAL_PRECURSOR_SCAN_NO 8554 CONFIDENCE standard compound; INTERNAL_ID 765; DATASET 20200303_ENTACT_RP_MIX507; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 8561; ORIGINAL_PRECURSOR_SCAN_NO 8559 CONFIDENCE standard compound; INTERNAL_ID 765; DATASET 20200303_ENTACT_RP_MIX507; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 5096; ORIGINAL_PRECURSOR_SCAN_NO 5093 CONFIDENCE standard compound; INTERNAL_ID 765; DATASET 20200303_ENTACT_RP_MIX507; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 8572; ORIGINAL_PRECURSOR_SCAN_NO 8570 CONFIDENCE standard compound; INTERNAL_ID 765; DATASET 20200303_ENTACT_RP_MIX507; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 5090; ORIGINAL_PRECURSOR_SCAN_NO 5089 CONFIDENCE Reference Standard (Level 1); NaToxAq - Natural Toxins and Drinking Water Quality - From Source to Tap (https://natoxaq.ku.dk) CONFIDENCE standard compound; EAWAG_UCHEM_ID 3265 IPB_RECORD: 441; CONFIDENCE confident structure CONFIDENCE standard compound; INTERNAL_ID 4238 CONFIDENCE standard compound; INTERNAL_ID 8827 CONFIDENCE standard compound; INTERNAL_ID 2419 CONFIDENCE standard compound; INTERNAL_ID 4162 CONFIDENCE standard compound; INTERNAL_ID 176 Genistein, a soy isoflavone, is a multiple tyrosine kinases (e.g., EGFR) inhibitor which acts as a chemotherapeutic agent against different types of cancer, mainly by altering apoptosis, the cell cycle, and angiogenesis and inhibiting metastasis. Genistein, a soy isoflavone, is a multiple tyrosine kinases (e.g., EGFR) inhibitor which acts as a chemotherapeutic agent against different types of cancer, mainly by altering apoptosis, the cell cycle, and angiogenesis and inhibiting metastasis.

   

4-Hydroxybenzaldehyde

4-hydroxybenzaldehyde

C7H6O2 (122.0368)


4-Hydroxybenzaldehyde, also known as 4-formylphenol or 4-hydroxybenzenecarbonal, belongs to the class of organic compounds known as hydroxybenzaldehydes. These are organic aromatic compounds containing a benzene ring carrying an aldehyde group and a hydroxyl group. A hydroxybenzaldehyde that is benzaldehyde substituted with a hydroxy group at position C-4. 4-Hydroxybenzaldehyde exists in all living organisms, ranging from bacteria to humans. 4-Hydroxybenzaldehyde is a sweet, almond, and balsam tasting compound. 4-Hydroxybenzaldehyde is found, on average, in the highest concentration within vinegars and oats. 4-Hydroxybenzaldehyde has also been detected, but not quantified, in several different foods, such as cardoons, colorado pinyons, oyster mushrooms, common chokecherries, and potato. This could make 4-hydroxybenzaldehyde a potential biomarker for the consumption of these foods. 4-hydroxybenzaldehyde is a hydroxybenzaldehyde that is benzaldehyde substituted with a hydroxy group at position C-4. It has a role as a plant metabolite, a mouse metabolite and an EC 1.14.17.1 (dopamine beta-monooxygenase) inhibitor. 4-Hydroxybenzaldehyde is a natural product found in Ficus septica, Visnea mocanera, and other organisms with data available. Occurs naturally combined in many glycosides. Constituent of vanillin. Isol. in free state from opium poppy (Papaver somniferum) A hydroxybenzaldehyde that is benzaldehyde substituted with a hydroxy group at position C-4. 4-Hydroxybenzaldehyde. CAS Common Chemistry. CAS, a division of the American Chemical Society, n.d. https://commonchemistry.cas.org/detail?cas_rn=123-08-0 (retrieved 2024-07-02) (CAS RN: 123-08-0). Licensed under the Attribution-Noncommercial 4.0 International License (CC BY-NC 4.0). p-Hydroxybenzaldehyde is a one of the major components in vanilla aroma, with antagonistic effect on GABAA receptor of the α1β2γ2S subtype at high concentrations. p-Hydroxybenzaldehyde is a one of the major components in vanilla aroma, with antagonistic effect on GABAA receptor of the α1β2γ2S subtype at high concentrations. p-Hydroxybenzaldehyde is a one of the major components in vanilla aroma, with antagonistic effect on GABAA receptor of the α1β2γ2S subtype at high concentrations.

   

Tyrosol

4-hydroxy-Benzeneethanol;4-Hydroxyphenylethanol;beta-(4-Hydroxyphenyl)ethanol

C8H10O2 (138.0681)


Tyrosol is a phenolic compound present in two of the traditional components of the Mediterranean diet: wine and virgin olive oil. The presence of tyrosol has been described in red and white wines. Tyrosol is also present in vermouth and beer. Tyrosol has been shown to be able to exert antioxidant activity in vitro studies. Oxidation of low-density lipoprotein (LDL) appears to occur predominantly in arterial intimae in microdomains sequestered from antioxidants of plasma. The antioxidant content of the LDL particle is critical for its protection. The ability of tyrosol to bind human LDL has been reported. The bioavailability of tyrosol in humans from virgin olive oil in its natural form has been demonstrated. Urinary tyrosol increases, reaching a peak at 0-4 h after virgin olive oil administration. Men and women show a different pattern of urinary excretion of tyrosol. Moreover, tyrosol is absorbed in a dose-dependent manner after sustained and moderate doses of virgin olive oil. Tyrosol from wine or virgin olive oil could exert beneficial effects on human health in vivo if its biological properties are confirmed (PMID 15134375). Tyrosol is a microbial metabolite found in Bifidobacterium, Escherichia and Lactobacillus (PMID:28393285). 2-(4-hydroxyphenyl)ethanol is a phenol substituted at position 4 by a 2-hydroxyethyl group. It has a role as an anti-arrhythmia drug, an antioxidant, a cardiovascular drug, a protective agent, a fungal metabolite, a geroprotector and a plant metabolite. It is functionally related to a 2-phenylethanol. 2-(4-Hydroxyphenyl)ethanol is a natural product found in Thalictrum petaloideum, Casearia sylvestris, and other organisms with data available. Tyrosol is a metabolite found in or produced by Saccharomyces cerevisiae. See also: Sedum roseum root (part of); Rhodiola crenulata root (part of). D002317 - Cardiovascular Agents > D000889 - Anti-Arrhythmia Agents A phenol substituted at position 4 by a 2-hydroxyethyl group. D020011 - Protective Agents > D000975 - Antioxidants Tyrosol is a derivative of phenethyl alcohol. Tyrosol attenuates pro-inflammatory cytokines from cultured astrocytes and NF-κB activation. Anti-oxidative and anti-inflammatory effects[1]. Tyrosol is a derivative of phenethyl alcohol. Tyrosol attenuates pro-inflammatory cytokines from cultured astrocytes and NF-κB activation. Anti-oxidative and anti-inflammatory effects[1].

   

beta-Carotene

1,3,3-trimethyl-2-[(1E,3E,5E,7E,9E,11E,13E,15E,17E)-3,7,12,16-tetramethyl-18-(2,6,6-trimethylcyclohex-1-en-1-yl)octadeca-1,3,5,7,9,11,13,15,17-nonaen-1-yl]cyclohex-1-ene

C40H56 (536.4382)


Beta-carotene is a cyclic carotene obtained by dimerisation of all-trans-retinol. A strongly-coloured red-orange pigment abundant in plants and fruit and the most active and important provitamin A carotenoid. It has a role as a biological pigment, a provitamin A, a plant metabolite, a human metabolite, a mouse metabolite, a cofactor, a ferroptosis inhibitor and an antioxidant. It is a cyclic carotene and a carotenoid beta-end derivative. Beta-carotene, with the molecular formula C40H56, belongs to the group of carotenoids consisting of isoprene units. The presence of long chains of conjugated double bonds donates beta-carotene with specific colors. It is the most abundant form of carotenoid and it is a precursor of the vitamin A. Beta-carotene is composed of two retinyl groups. It is an antioxidant that can be found in yellow, orange and green leafy vegetables and fruits. Under the FDA, beta-carotene is considered as a generally recognized as safe substance (GRAS). Beta-Carotene is a natural product found in Epicoccum nigrum, Lonicera japonica, and other organisms with data available. Beta-Carotene is a naturally-occurring retinol (vitamin A) precursor obtained from certain fruits and vegetables with potential antineoplastic and chemopreventive activities. As an anti-oxidant, beta carotene inhibits free-radical damage to DNA. This agent also induces cell differentiation and apoptosis of some tumor cell types, particularly in early stages of tumorigenesis, and enhances immune system activity by stimulating the release of natural killer cells, lymphocytes, and monocytes. (NCI04) beta-Carotene is a metabolite found in or produced by Saccharomyces cerevisiae. A carotenoid that is a precursor of VITAMIN A. Beta carotene is administered to reduce the severity of photosensitivity reactions in patients with erythropoietic protoporphyria (PORPHYRIA, ERYTHROPOIETIC). See also: Lycopene (part of); Broccoli (part of); Lycium barbarum fruit (part of). Beta-Carotene belongs to the class of organic compounds known as carotenes. These are a type of polyunsaturated hydrocarbon molecules containing eight consecutive isoprene units. Carotenes are characterized by the presence of two end-groups (mostly cyclohexene rings, but also cyclopentene rings or acyclic groups) linked by a long branched alkyl chain. Beta-carotene is therefore considered to be an isoprenoid lipid molecule. Beta-carotene is a strongly coloured red-orange pigment abundant in fungi, plants, and fruits. It is synthesized biochemically from eight isoprene units and therefore has 40 carbons. Among the carotenes, beta-carotene is distinguished by having beta-rings at both ends of the molecule. Beta-Carotene is biosynthesized from geranylgeranyl pyrophosphate. It is the most common form of carotene in plants. In nature, Beta-carotene is a precursor (inactive form) to vitamin A. Vitamin A is produed via the action of beta-carotene 15,15-monooxygenase on carotenes. In mammals, carotenoid absorption is restricted to the duodenum of the small intestine and dependent on a class B scavenger receptor (SR-B1) membrane protein, which is also responsible for the absorption of vitamin E. One molecule of beta-carotene can be cleaved by the intestinal enzyme Beta-Beta-carotene 15,15-monooxygenase into two molecules of vitamin A. Beta-Carotene contributes to the orange color of many different fruits and vegetables. Vietnamese gac and crude palm oil are particularly rich sources, as are yellow and orange fruits, such as cantaloupe, mangoes, pumpkin, and papayas, and orange root vegetables such as carrots and sweet potatoes. Excess beta-carotene is predominantly stored in the fat tissues of the body. The most common side effect of excessive beta-carotene consumption is carotenodermia, a physically harmless condition that presents as a conspicuous orange skin tint arising from deposition of the carotenoid in the outermost layer of the epidermis. Yellow food colour, dietary supplement, nutrient, Vitamin A precursor. Nutriceutical with antioxidation props. beta-Carotene is found in many foods, some of which are summer savory, gram bean, sunburst squash (pattypan squash), and other bread product. A cyclic carotene obtained by dimerisation of all-trans-retinol. A strongly-coloured red-orange pigment abundant in plants and fruit and the most active and important provitamin A carotenoid. D - Dermatologicals > D02 - Emollients and protectives > D02B - Protectives against uv-radiation > D02BB - Protectives against uv-radiation for systemic use A - Alimentary tract and metabolism > A11 - Vitamins > A11C - Vitamin a and d, incl. combinations of the two > A11CA - Vitamin a, plain D020011 - Protective Agents > D000975 - Antioxidants > D002338 - Carotenoids D018977 - Micronutrients > D014815 - Vitamins > D000072664 - Provitamins

   

Emodin

1,3,8-trihydroxy-6-methyl-anthracene-9,10-dione;3-METHYL-1,6,8-TRIHYDROXYANTHRAQUINONE

C15H10O5 (270.0528)


Emodin appears as orange needles or powder. (NTP, 1992) Emodin is a trihydroxyanthraquinone that is 9,10-anthraquinone which is substituted by hydroxy groups at positions 1, 3, and 8 and by a methyl group at position 6. It is present in the roots and barks of numerous plants (particularly rhubarb and buckthorn), moulds, and lichens. It is an active ingredient of various Chinese herbs. It has a role as a tyrosine kinase inhibitor, an antineoplastic agent, a laxative and a plant metabolite. It is functionally related to an emodin anthrone. It is a conjugate acid of an emodin(1-). Emodin has been investigated for the treatment of Polycystic Kidney. Emodin is a natural product found in Rumex dentatus, Rhamnus davurica, and other organisms with data available. Emodin is found in dock. Emodin is present in Cascara sagrada.Emodin is a purgative resin from rhubarb, Polygonum cuspidatum, the buckthorn and Japanese Knotweed (Fallopia japonica). The term may also refer to any one of a series of principles isomeric with the emodin of rhubarb. (Wikipedia) Emodin has been shown to exhibit anti-inflammatory, signalling, antibiotic, muscle building and anti-angiogenic functions (A3049, A7853, A7854, A7855, A7857). Purgative anthraquinone found in several plants, especially RHAMNUS PURSHIANA. It was formerly used as a laxative, but is now used mainly as a tool in toxicity studies. See also: Reynoutria multiflora root (part of); Frangula purshiana Bark (part of). A trihydroxyanthraquinone that is 9,10-anthraquinone which is substituted by hydroxy groups at positions 1, 3, and 8 and by a methyl group at position 6. It is present in the roots and barks of numerous plants (particularly rhubarb and buckthorn), moulds, and lichens. It is an active ingredient of various Chinese herbs. Emodin is found in dock. Emodin is present in Cascara sagrada.Emodin is a purgative resin from rhubarb, Polygonum cuspidatum, the buckthorn and Japanese Knotweed (Fallopia japonica). The term may also refer to any one of a series of principles isomeric with the emodin of rhubarb. (Wikipedia C471 - Enzyme Inhibitor > C1404 - Protein Kinase Inhibitor > C1967 - Tyrosine Kinase Inhibitor D004791 - Enzyme Inhibitors > D047428 - Protein Kinase Inhibitors D005765 - Gastrointestinal Agents > D002400 - Cathartics Present in Cascara sagrada CONFIDENCE standard compound; INTERNAL_ID 999; DATASET 20200303_ENTACT_RP_MIX507; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 8540; ORIGINAL_PRECURSOR_SCAN_NO 8539 CONFIDENCE standard compound; INTERNAL_ID 999; DATASET 20200303_ENTACT_RP_MIX507; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 8561; ORIGINAL_PRECURSOR_SCAN_NO 8559 CONFIDENCE standard compound; INTERNAL_ID 999; DATASET 20200303_ENTACT_RP_MIX507; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 5082; ORIGINAL_PRECURSOR_SCAN_NO 5079 CONFIDENCE standard compound; INTERNAL_ID 999; DATASET 20200303_ENTACT_RP_MIX507; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 8572; ORIGINAL_PRECURSOR_SCAN_NO 8570 CONFIDENCE standard compound; INTERNAL_ID 999; DATASET 20200303_ENTACT_RP_MIX507; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 5104; ORIGINAL_PRECURSOR_SCAN_NO 5099 CONFIDENCE standard compound; INTERNAL_ID 999; DATASET 20200303_ENTACT_RP_MIX507; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 8558; ORIGINAL_PRECURSOR_SCAN_NO 8556 ORIGINAL_PRECURSOR_SCAN_NO 5094; CONFIDENCE standard compound; INTERNAL_ID 999; DATASET 20200303_ENTACT_RP_MIX507; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 5097 CONFIDENCE standard compound; INTERNAL_ID 999; DATASET 20200303_ENTACT_RP_MIX507; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 8554; ORIGINAL_PRECURSOR_SCAN_NO 8550 CONFIDENCE standard compound; INTERNAL_ID 999; DATASET 20200303_ENTACT_RP_MIX507; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 5096; ORIGINAL_PRECURSOR_SCAN_NO 5093 CONFIDENCE standard compound; INTERNAL_ID 999; DATASET 20200303_ENTACT_RP_MIX507; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 8556; ORIGINAL_PRECURSOR_SCAN_NO 8554 CONFIDENCE standard compound; INTERNAL_ID 999; DATASET 20200303_ENTACT_RP_MIX507; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 5090; ORIGINAL_PRECURSOR_SCAN_NO 5089 CONFIDENCE standard compound; INTERNAL_ID 999; DATASET 20200303_ENTACT_RP_MIX507; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 5085; ORIGINAL_PRECURSOR_SCAN_NO 5082 CONFIDENCE standard compound; INTERNAL_ID 999; DATASET 20200303_ENTACT_RP_MIX507; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 5097; ORIGINAL_PRECURSOR_SCAN_NO 5094 [Raw Data] CB029_Emodin_pos_50eV_CB000015.txt [Raw Data] CB029_Emodin_pos_10eV_CB000015.txt [Raw Data] CB029_Emodin_pos_20eV_CB000015.txt [Raw Data] CB029_Emodin_pos_30eV_CB000015.txt [Raw Data] CB029_Emodin_pos_40eV_CB000015.txt [Raw Data] CB029_Emodin_neg_50eV_000008.txt [Raw Data] CB029_Emodin_neg_20eV_000008.txt [Raw Data] CB029_Emodin_neg_40eV_000008.txt [Raw Data] CB029_Emodin_neg_30eV_000008.txt [Raw Data] CB029_Emodin_neg_10eV_000008.txt CONFIDENCE standard compound; ML_ID 38 Emodin (Frangula emodin), an anthraquinone derivative, is an anti-SARS-CoV compound. Emodin blocks the SARS coronavirus spike protein and angiotensin-converting enzyme 2 (ACE2) interaction[1]. Emodin inhibits casein kinase-2 (CK2). Anti-inflammatory and anticancer effects[2]. Emodin is a potent selective 11β-HSD1 inhibitor with the IC50 of 186 and 86 nM for human and mouse 11β-HSD1, respectively. Emodin ameliorates metabolic disorder in diet-induced obese mice[3]. Emodin (Frangula emodin), an anthraquinone derivative, is an anti-SARS-CoV compound. Emodin blocks the SARS coronavirus spike protein and angiotensin-converting enzyme 2 (ACE2) interaction[1]. Emodin inhibits casein kinase-2 (CK2). Anti-inflammatory and anticancer effects[2]. Emodin is a potent selective 11β-HSD1 inhibitor with the IC50 of 186 and 86 nM for human and mouse 11β-HSD1, respectively. Emodin ameliorates metabolic disorder in diet-induced obese mice[3].

   

Nobiletin

2-(3,4-Dimethoxyphenyl)-5,6,7,8-tetramethoxy-4H-1-benzopyran-4-one, 9CI

C21H22O8 (402.1315)


Nobiletin is a methoxyflavone that is flavone substituted by methoxy groups at positions 5, 6, 7, 8, 3 and 4 respectively. It has a role as a plant metabolite and an antineoplastic agent. It is functionally related to a flavone. Nobiletin is a natural product found in Citrus tankan, Citrus keraji, and other organisms with data available. See also: Tangerine peel (part of); Citrus aurantium fruit rind (part of). Isolated from peel of king orange (Citrus nobilis), seville orange (Citrus aurantium) and other Citrus subspecies, and the round kumquat (Fortunella japonica). Nobiletin is found in many foods, some of which are sweet bay, citrus, lemon, and grapefruit. Nobiletin is found in citrus. Nobiletin is isolated from peel of king orange (Citrus nobilis), seville orange (Citrus aurantium) and other Citrus species, and the round kumquat (Fortunella japonica A methoxyflavone that is flavone substituted by methoxy groups at positions 5, 6, 7, 8, 3 and 4 respectively. D020011 - Protective Agents > D000975 - Antioxidants Nobiletin is a poly-methoxylated flavone from the citrus peel that improves memory loss. Nobiletin is a retinoid acid receptor-related orphan receptors (RORs) agonist. Nobiletin can reduce reactive oxygen species (ROS) levels in differentiated C2C12 myotubes and has anti-inflammation and anti-cancer properties, including anti-angiogenesis, anti-proliferation, anti-metastasis and induced apoptosis[1][2][3][4]. Nobiletin is a poly-methoxylated flavone from the citrus peel that improves memory loss. Nobiletin is a retinoid acid receptor-related orphan receptors (RORs) agonist. Nobiletin can reduce reactive oxygen species (ROS) levels in differentiated C2C12 myotubes and has anti-inflammation and anti-cancer properties, including anti-angiogenesis, anti-proliferation, anti-metastasis and induced apoptosis[1][2][3][4].

   

aphidicolin

8,11|A-Methano-11aH-cyclohepta[a]naphthalene-4,9-dimethanol,tetradecahydro-3,9-dihydroxy-4,11b-dimethyl-, (3R,4R,4aR,6aS,8R,9R,11aS,11bS)-

C20H34O4 (338.2457)


A tetracyclic diterpenoid that has an tetradecahydro-8,11a-methanocyclohepta[a]naphthalene skeleton with two hydroxymethyl substituents at positions 4 and 9, two methyl substituents at positions 4 and 11b and two hydroxy substituents at positions 3 and 9. An antibiotic with antiviral and antimitotical properties. Aphidicolin is a reversible inhibitor of eukaryotic nuclear DNA replication. D000890 - Anti-Infective Agents > D000998 - Antiviral Agents D004791 - Enzyme Inhibitors

   

Chrysophanol

1,8-DIHYDROXY-3-METHYL-9,10-DIHYDROANTHRACENE-9,10-DIONE

C15H10O4 (254.0579)


Chrysophanic acid appears as golden yellow plates or brown powder. Melting point 196 °C. Slightly soluble in water. Pale yellow aqueous solutions turn red on addition of alkali. Solutions in concentrated sulfuric acid are red. (NTP, 1992) Chrysophanol is a trihydroxyanthraquinone that is chrysazin with a methyl substituent at C-3. It has been isolated from Aloe vera and exhibits antiviral and anti-inflammatory activity. It has a role as an antiviral agent, an anti-inflammatory agent and a plant metabolite. It is functionally related to a chrysazin. Chrysophanol is a natural product found in Rumex dentatus, Ageratina altissima, and other organisms with data available. See also: Frangula purshiana Bark (part of). A trihydroxyanthraquinone that is chrysazin with a methyl substituent at C-3. It has been isolated from Aloe vera and exhibits antiviral and anti-inflammatory activity. Constituent of Rumex, Rheum subspecies Chrysophanol is found in dock, garden rhubarb, and sorrel. Chrysophanol is found in dock. Chrysophanol is a constituent of Rumex, Rheum species D009676 - Noxae > D009153 - Mutagens Chrysophanol (Chrysophanic acid) is a natural anthraquinone, which inhibits EGF-induced phosphorylation of EGFR and suppresses activation of AKT and mTOR/p70S6K. Chrysophanol (Chrysophanic acid) is a natural anthraquinone, which inhibits EGF-induced phosphorylation of EGFR and suppresses activation of AKT and mTOR/p70S6K.

   

Pinolidoxin

8,9-dihydroxy-2-oxo-10-propyl-3,4,5,8,9,10-hexahydro-2H-oxecin-3-yl (2E,4E)-hexa-2,4-dienoate

C18H26O6 (338.1729)


Pinolidoxin, also known as lethaloxin, is a member of the class of compounds known as oxocins. Oxocins are compounds containing an oxocin ring, which is a eight-member unsaturated aromatic ring containing one oxygen atom and seven carbon atoms. Pinolidoxin is practically insoluble (in water) and a very weakly acidic compound (based on its pKa). Pinolidoxin can be found in common pea, which makes pinolidoxin a potential biomarker for the consumption of this food product.

   
   

gamma-Carotene

2-[(1E,3E,5E,7E,9E,11E,13E,15E,17E,19E)-3,7,12,16,20,24-hexamethylpentacosa-1,3,5,7,9,11,13,15,17,19,23-undecaen-1-yl]-1,3,3-trimethylcyclohex-1-ene

C40H56 (536.4382)


gamma-Carotene is a cyclic carotene obtained by the cyclization of lycopene. It is found in human serum and breast milk (PMID: 9164160). Carotenoids are isoprenoid molecules that are widespread in nature and are typically seen as pigments in fruits, flowers, birds, and crustacea. Animals are unable to synthesize carotenoids de novo and rely upon the diet as a source of these compounds. Over recent years there has been considerable interest in dietary carotenoids with respect to their potential in alleviating age-related diseases in humans. This attention has been mirrored by significant advances in cloning most of the carotenoid genes and in the genetic manipulation of crop plants with the intention of increasing levels in the diet. Studies have shown an inverse relationship between the consumption of certain fruits and vegetables and the risk of epithelial cancer. Since carotenoids are among the micronutrients found in cancer-preventive foods, detailed qualitative and quantitative determination of these compounds, particularly in fruits and vegetables and in human plasma, have recently become increasingly important (PMID: 1416048, 15003396). Gamma-carotene, also known as γ-carotene, is a member of the class of compounds known as carotenes. Carotenes are a type of unsaturated hydrocarbons containing eight consecutive isoprene units. They are characterized by the presence of two end-groups (mostly cyclohexene rings, but also cyclopentene rings or acyclic groups) linked by a long branched alkyl chain. Carotenes belonging form a subgroup of the carotenoids family. Gamma-carotene can be found in a number of food items such as corn, yellow bell pepper, fig, and papaya, which makes gamma-carotene a potential biomarker for the consumption of these food products.

   

Rhodoxanthin

DTXSID10275904

C40H50O2 (562.3811)


D020011 - Protective Agents > D000975 - Antioxidants > D002338 - Carotenoids

   

6-Methylsalicylic acid

2-HYDROXY-6-METHYLBENZOIC ACID

C8H8O3 (152.0473)


A monohydroxybenzoic acid that is salicylic acid in which the hydrogen ortho to the carboxylic acid group is substituted by a methyl group. D000893 - Anti-Inflammatory Agents > D000894 - Anti-Inflammatory Agents, Non-Steroidal > D012459 - Salicylates

   

ent-8(14),15-Pimaradiene

7-ethenyl-1,1,4a,7-tetramethyl-1,2,3,4,4a,4b,5,6,7,9,10,10a-dodecahydrophenanthrene

C20H32 (272.2504)


ent-8(14),15-Pimaradiene is found in fruits. ent-8(14),15-Pimaradiene is a constituent of Aralia racemosa (American spikenard). Constituent of Aralia racemosa (American spikenard). ent-8(14),15-Pimaradiene is found in fruits.

   

Putaminoxin

Putaminoxin

C12H20O3 (212.1412)


   
   

Rishitin

1-methyl-7-(prop-1-en-2-yl)-1,2,3,4,5,6,7,8-octahydronaphthalene-2,3-diol

C14H22O2 (222.162)


Constituent of the tubers of white potatoes (Solanum subspecies) infected by Phytophthora infestans. Rishitin is found in many foods, some of which are pepper (c. annuum), yellow bell pepper, red bell pepper, and garden tomato (variety). Rishitin is found in alcoholic beverages. Rishitin is a constituent of the tubers of white potatoes (Solanum species) infected by Phytophthora infestans

   

Solavetivone

6,10-dimethyl-2-(prop-1-en-2-yl)spiro[4.5]dec-6-en-8-one

C15H22O (218.1671)


Solavetivone is found in alcoholic beverages. Solavetivone is a stress metabolite from potato tubers (Solanum tuberosum Stress metabolite from potato tubers (Solanum tuberosum). Solavetivone is found in alcoholic beverages and potato.

   

Lycopodine

12-Epilycopodine

C16H25NO (247.1936)


   

Cyperine

2-(3-Hydroxy-5-methylphenoxy)-5-methoxy-3-methylphenol, 9ci

C15H16O4 (260.1049)


Cyperine is found in root vegetables. Cyperine is a metabolite of a fungal pathogen of Cyperus rotundus (nutgrass). Metabolite of a fungal pathogen of Cyperus rotundus (nutgrass). Cyperine is found in root vegetables.

   

PM-Toxin A

(4R,12R,20R,28R)-4,12,20,28-Tetrahydroxy-2,10,18,26-tritriacontanetetrone

C33H60O8 (584.4288)


   

Usnic acid

2,6-Diacetyl-3,7,9-trihydroxy-8,9b-dimethyldibenzofuran-1-one

C18H16O7 (344.0896)


A member of the class of dibenzofurans that is dibenzo[b,d]furan-1(9bH)-one substituted by acetyl groups at positions 2 and 6, hydroxy groups at positions 3 and 7 and methyl groups at positions 8 and 9b. D000890 - Anti-Infective Agents > D000977 - Antiparasitic Agents > D000981 - Antiprotozoal Agents relative retention time with respect to 9-anthracene Carboxylic Acid is 1.457 D000890 - Anti-Infective Agents > D000935 - Antifungal Agents relative retention time with respect to 9-anthracene Carboxylic Acid is 1.456 relative retention time with respect to 9-anthracene Carboxylic Acid is 1.458 relative retention time with respect to 9-anthracene Carboxylic Acid is 1.459 relative retention time with respect to 9-anthracene Carboxylic Acid is 1.455 (+)-Usnic acid is isolated from isolated from lichens, binds at the ATP-binding pocket of mTOR, and inhibits mTORC1/2 activity. (+)-Usnic acid inhibits the phosphorylation of mTOR downstream effectors: Akt (Ser473), 4EBP1, S6K, induces autophay, with anti-cancer activity[1]. (+)-Usnic acid possesses antimicrobial activity against a number of planktonic gram-positive bacteria, including Staphylococcus aureus, Enterococcus faecalis, and Enterococcus faecium[2]. (+)-Usnic acid is isolated from isolated from lichens, binds at the ATP-binding pocket of mTOR, and inhibits mTORC1/2 activity. (+)-Usnic acid inhibits the phosphorylation of mTOR downstream effectors: Akt (Ser473), 4EBP1, S6K, induces autophay, with anti-cancer activity[1]. (+)-Usnic acid possesses antimicrobial activity against a number of planktonic gram-positive bacteria, including Staphylococcus aureus, Enterococcus faecalis, and Enterococcus faecium[2]. (+)-Usnic acid is isolated from isolated from lichens, binds at the ATP-binding pocket of mTOR, and inhibits mTORC1/2 activity. (+)-Usnic acid inhibits the phosphorylation of mTOR downstream effectors: Akt (Ser473), 4EBP1, S6K, induces autophay, with anti-cancer activity[1]. (+)-Usnic acid possesses antimicrobial activity against a number of planktonic gram-positive bacteria, including Staphylococcus aureus, Enterococcus faecalis, and Enterococcus faecium[2]. (+)-Usnic acid is isolated from isolated from lichens, binds at the ATP-binding pocket of mTOR, and inhibits mTORC1/2 activity. (+)-Usnic acid inhibits the phosphorylation of mTOR downstream effectors: Akt (Ser473), 4EBP1, S6K, induces autophay, with anti-cancer activity[1]. (+)-Usnic acid possesses antimicrobial activity against a number of planktonic gram-positive bacteria, including Staphylococcus aureus, Enterococcus faecalis, and Enterococcus faecium[2]. Usnic acid, a lichen-derived secondary metabolite, has a unique dibenzofuran skeleton. Usnic acid has excellent anticancer and antimicrobial properties. Usnic acid significantly inhibits RANKL-mediated osteoclast formation and function by reducing the transcriptional and translational expression of NFATc1[1]. Usnic acid, a lichen-derived secondary metabolite, has a unique dibenzofuran skeleton. Usnic acid has excellent anticancer and antimicrobial properties. Usnic acid significantly inhibits RANKL-mediated osteoclast formation and function by reducing the transcriptional and translational expression of NFATc1[1].

   
   

Ascosalitoxin

Ascosalitoxin

C15H20O4 (264.1362)


   

Aphidicol-16-ene

9beta-stemod-13(17)-ene

C20H32 (272.2504)


   

Stemar-13-ene

(4aS,6aS,9R,11aR,11bS)-4,4,8,11b-tetramethyl-1,2,3,4,4a,5,6,6a,9,10,11,11b-dodecahydro-9,11a-methanocyclohepta[a]naphthalene

C20H32 (272.2504)


Stemar-13-ene is a member of the class of compounds known as stemarane diterpenoids. Stemarane diterpenoids are diterpenoids with a structure characterized by a stemarane skeleton. Some characteristics include the bicyclic system C/D that is constituted by a bicyclo[3.2.1]octane fused to the bicyclic A/B system in a different fashion with respect to other tetracyclic diterpenes possessing the bicyclo[3.2.1]octane system. Moreover, the two contiguous quaternary carbon atoms, C(9) and C(10), are present, the former being a spirocyclic atom. Oxygenation can happen at positions C(2), C(7), C(13), C(17), C(18), and C(19). Thus, stemar-13-ene is considered to be an isoprenoid lipid molecule. Stemar-13-ene can be found in rice, which makes stemar-13-ene a potential biomarker for the consumption of this food product.

   

Cytochalasin B

2H-Oxacyclotetradec(2,3-d)isoindole-2,18(5H)-dione, 16-benzyl-6,7,8,9,10,12a,13,14,15,15a,16,17-dodecahydro-5,13-dihydroxy-9,15-dimethyl-14-methylene-, (E,E)-(5S,9R,12aS,13S,15S,15aS,16S,18aS)-

C29H37NO5 (479.2672)


An organic heterotricyclic compound, that is a mycotoxin which is cell permeable an an inhibitor of cytoplasmic division by blocking the formation of contractile microfilaments. D009676 - Noxae > D011042 - Poisons > D009183 - Mycotoxins Cytochalasin B is a cell-permeable mycotoxin binding to the barbed end of actin filaments, disrupting the formation of actin polymers, with Kd value of 1.4-2.2 nM for F-actin. Cytochalasin B blocks cell migration.

   

Solanapyrone A

Solanapyrone A

C18H22O4 (302.1518)


   

7-Hydroxy-(S)-usnate

7-Hydroxy-(S)-usnate

C18H16O7 (344.0896)


   

Usnic_acid

4,10-diacetyl-11,13-dihydroxy-2,12-dimethyl-8-oxatricyclo[7.4.0.0^{2,7}]trideca-1(9),6,10,12-tetraene-3,5-dione

C18H16O7 (344.0896)


7-Hydroxy-(S)-usnate is a member of benzofurans. Usnic acid is a natural product found in Lecanora muralis, Usnea florida, and other organisms with data available. D000890 - Anti-Infective Agents > D000977 - Antiparasitic Agents > D000981 - Antiprotozoal Agents D000890 - Anti-Infective Agents > D000935 - Antifungal Agents Usnic acid, a lichen-derived secondary metabolite, has a unique dibenzofuran skeleton. Usnic acid has excellent anticancer and antimicrobial properties. Usnic acid significantly inhibits RANKL-mediated osteoclast formation and function by reducing the transcriptional and translational expression of NFATc1[1]. Usnic acid, a lichen-derived secondary metabolite, has a unique dibenzofuran skeleton. Usnic acid has excellent anticancer and antimicrobial properties. Usnic acid significantly inhibits RANKL-mediated osteoclast formation and function by reducing the transcriptional and translational expression of NFATc1[1].

   

(4R,5S,7R,11x)-11,12-Dihydroxy-1(10)-spirovetiven-2-one 12-glucoside

2-(2-hydroxy-1-{[3,4,5-trihydroxy-6-(hydroxymethyl)oxan-2-yl]oxy}propan-2-yl)-6,10-dimethylspiro[4.5]dec-6-en-8-one

C21H34O8 (414.2254)


(4R,5S,7R,11x)-11,12-Dihydroxy-1(10)-spirovetiven-2-one 12-glucoside is found in potato. (4R,5S,7R,11x)-11,12-Dihydroxy-1(10)-spirovetiven-2-one 12-glucoside is isolated from potatoes infected with Phoma exigu Isolated from potatoes infected with Phoma exigua. (4R,5S,7R,11x)-11,12-Dihydroxy-1(10)-spirovetiven-2-one 12-glucoside is found in potato.

   

3,11,12-Trihydroxy-1(10)-spirovetiven-2-one

2-(1,2-dihydroxypropan-2-yl)-9-hydroxy-6,10-dimethylspiro[4.5]dec-6-en-8-one

C15H24O4 (268.1675)


3,11,12-Trihydroxy-1(10)-spirovetiven-2-one is found in alcoholic beverages. 3,11,12-Trihydroxy-1(10)-spirovetiven-2-one is a constituent of potato tubers infected with Phoma exigua. Constituent of potato tubers infected with Phoma exigua. 3,11,12-Trihydroxy-1(10)-spirovetiven-2-one is found in alcoholic beverages and potato.

   

Phomarin

1,6-dihydroxy-3-methyl-9,10-dihydroanthracene-9,10-dione

C15H10O4 (254.0579)


Phomarin is found in herbs and spices. Phomarin is from roots of Ruta graveolens (rue

   

(4R,5S,7R,11R)-11,12-Dihydroxy-1(10)-spirovetiven-2-one

2-(1,2-dihydroxypropan-2-yl)-6,10-dimethylspiro[4.5]dec-6-en-8-one

C15H24O3 (252.1725)


(4R,5S,7R,11x)-11,12-Dihydroxy-1(10)-spirovetiven-2-one is found in potato. (4R,5S,7R,11x)-11,12-Dihydroxy-1(10)-spirovetiven-2-one is a constituent of potatoes infected with Phoma exigua.

   

Eleutheroside B1

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

C17H20O10 (384.1056)


Calycanthoside is found in herbs and spices. Calycanthoside is a constituent of Calycanthus occidentalis (Californian allspice) From Siberian ginseng (Eleutherococcus (Acanthopanax) senticosus). Eleutheroside B1 is found in tea and potato.

   

Solanolone

3,4,7,10-tetrahydroxy-6-methyl-1,2,3,4,4a,9,10,10a-octahydrophenanthren-9-one

C15H18O5 (278.1154)


Solanolone is found in potato. Solanolone is a constituent of potato tubers infected with Phoma exigua var. foveata. Constituent of potato tubers infected with Phoma exigua variety foveata. Solanolone is found in potato.

   

Berteroin

1-Isothiocyanato-5-(methylsulphanyl)pentane

C7H13NS2 (175.0489)


Berteroin is found in brassicas. Berteroin is produced by Wasabia japonica (Japanese horseradish

   

Ascochitine

3-(butan-2-yl)-8-hydroxy-4-methyl-6-oxo-6H-isochromene-7-carboxylic acid

C15H16O5 (276.0998)


Causes brown rot in broad bean

   

Etrogol

2-{4-[(3-methylbut-2-en-1-yl)oxy]phenyl}ethan-1-ol

C13H18O2 (206.1307)


Isolated from the roots of Citrus subspecies Etrogol is found in sweet orange and citrus. Etrogol is found in citrus. Etrogol is isolated from the roots of Citrus species.

   

(2S,4R)-4-Aminopyrrolidine-2-carboxylic acid

(2S,4R)-4-Aminopyrrolidine-2-carboxylic acid

C5H10N2O2 (130.0742)


   

2-(3,7,12,16,20,24-Hexamethylpentacosa-1,3,5,7,9,11,13,15,17,19,23-undecaenyl)-1,3,3-trimethylcyclohexene

2-(3,7,12,16,20,24-hexamethylpentacosa-1,3,5,7,9,11,13,15,17,19,23-undecaen-1-yl)-1,3,3-trimethylcyclohex-1-ene

C40H56 (536.4382)


   

Ascofuranone

3-chloro-5-[7-(5,5-dimethyl-4-oxooxolan-2-yl)-3-methylocta-2,6-dien-1-yl]-4,6-dihydroxy-2-methylbenzaldehyde

C23H29ClO5 (420.1703)


   

Epicocconone

6-(1-hydroxy-3-oxodeca-1,4,6,8-tetraen-1-yl)-11-(hydroxymethyl)-3-methyl-4,12-dioxatricyclo[7.4.0.0³,⁷]trideca-1(13),6,8-triene-2,5-dione

C23H22O7 (410.1365)


   

usnic acid

4,10-diacetyl-11,13-dihydroxy-2,12-dimethyl-8-oxatricyclo[7.4.0.0²,⁷]trideca-1(9),6,10,12-tetraene-3,5-dione

C18H16O7 (344.0896)


   

Mellein

(3R)-8-hydroxy-3-methyl-3,4-dihydro-1H-2-benzopyran-1-one

C10H10O3 (178.063)


Mellein, also known as (R)-mellein, is a member of the class of compounds known as 2-benzopyrans. 2-benzopyrans are organic aromatic compounds that 1-benzopyran, a bicyclic compound made up of a benzene ring fused to a pyran, so that the oxygen atom is at the 2-position. Mellein is slightly soluble (in water) and a very weakly acidic compound (based on its pKa). Mellein can be found in cocoa powder, which makes mellein a potential biomarker for the consumption of this food product. Mellein is a dihydroisocoumarin, a phenolic compound produced by Aspergillus ochraceus .

   

Risbitin

(1S,2R,3R,7R)-1-methyl-7-(prop-1-en-2-yl)-1,2,3,4,5,6,7,8-octahydronaphthalene-2,3-diol

C14H22O2 (222.162)


Risbitin, also known as rishitin, (1s-(1alpha,2beta,3alpha,7beta))-isomer, is a member of the class of compounds known as 1,2-diols. 1,2-diols are polyols containing an alcohol group at two adjacent positions. Risbitin is slightly soluble (in water) and a very weakly acidic compound (based on its pKa). Risbitin can be found in potato, which makes risbitin a potential biomarker for the consumption of this food product.

   

Phytuberol

2-(3a,5a-dimethyl-6,7,8,9-tetrahydro-5H-furo[2,3-i][2]benzofuran-8-yl)propan-2-ol

C15H24O3 (252.1725)


Phytuberol is a member of the class of compounds known as sesquiterpenoids. Sesquiterpenoids are terpenes with three consecutive isoprene units. Phytuberol is practically insoluble (in water) and an extremely weak acidic compound (based on its pKa). Phytuberol can be found in potato, which makes phytuberol a potential biomarker for the consumption of this food product.

   

UsnicAcid

(2R)-4,10-diacetyl-3,11,13-trihydroxy-2,12-dimethyl-8-oxatricyclo[7.4.0.0^{2,7}]trideca-1(13),3,6,9,11-pentaen-5-one

C18H16O7 (344.0896)


(-)-usnic acid is the (-)-enantiomer of usnic acid. It has a role as an EC 1.13.11.27 (4-hydroxyphenylpyruvate dioxygenase) inhibitor. It is a conjugate acid of a (-)-usnic acid(2-). It is an enantiomer of a (+)-usnic acid. Usnic acid is a furandione found uniquely in lichen that is used widely in cosmetics, deodorants, toothpaste and medicinal creams as well as some herbal products. Taken orally, usnic acid can be toxic and has been linked to instances of clinically apparent, acute liver injury. (-)-Usnic acid is a natural product found in Dactylina arctica, Evernia divaricata, and other organisms with data available. The (-)-enantiomer of usnic acid. (+)-Usnic acid is isolated from isolated from lichens, binds at the ATP-binding pocket of mTOR, and inhibits mTORC1/2 activity. (+)-Usnic acid inhibits the phosphorylation of mTOR downstream effectors: Akt (Ser473), 4EBP1, S6K, induces autophay, with anti-cancer activity[1]. (+)-Usnic acid possesses antimicrobial activity against a number of planktonic gram-positive bacteria, including Staphylococcus aureus, Enterococcus faecalis, and Enterococcus faecium[2]. (+)-Usnic acid is isolated from isolated from lichens, binds at the ATP-binding pocket of mTOR, and inhibits mTORC1/2 activity. (+)-Usnic acid inhibits the phosphorylation of mTOR downstream effectors: Akt (Ser473), 4EBP1, S6K, induces autophay, with anti-cancer activity[1]. (+)-Usnic acid possesses antimicrobial activity against a number of planktonic gram-positive bacteria, including Staphylococcus aureus, Enterococcus faecalis, and Enterococcus faecium[2]. (+)-Usnic acid is isolated from isolated from lichens, binds at the ATP-binding pocket of mTOR, and inhibits mTORC1/2 activity. (+)-Usnic acid inhibits the phosphorylation of mTOR downstream effectors: Akt (Ser473), 4EBP1, S6K, induces autophay, with anti-cancer activity[1]. (+)-Usnic acid possesses antimicrobial activity against a number of planktonic gram-positive bacteria, including Staphylococcus aureus, Enterococcus faecalis, and Enterococcus faecium[2]. (+)-Usnic acid is isolated from isolated from lichens, binds at the ATP-binding pocket of mTOR, and inhibits mTORC1/2 activity. (+)-Usnic acid inhibits the phosphorylation of mTOR downstream effectors: Akt (Ser473), 4EBP1, S6K, induces autophay, with anti-cancer activity[1]. (+)-Usnic acid possesses antimicrobial activity against a number of planktonic gram-positive bacteria, including Staphylococcus aureus, Enterococcus faecalis, and Enterococcus faecium[2].

   

Mellein

Mellein

C10H10O3 (178.063)


D009676 - Noxae > D011042 - Poisons > D009793 - Ochratoxins D009676 - Noxae > D011042 - Poisons > D009183 - Mycotoxins CONFIDENCE isolated standard

   

cytochalasin D

cytochalasin D

C30H37NO6 (507.2621)


An organic heterotricyclic compound that is a mycotoxin produced by Helminthosporium and other moulds which is cell permeable and a potent inhibitor of actin polymerisation and DNA synthesis.

   
   

Ascofuranone

Ascofuranone

C23H29ClO5 (420.1703)


A dihydroxybenzaldehyde that is 2,4-dihydroxybenzaldehyde which is substituted by a (2E,6E)-7-[(2S)-5,5-dimethyl-4-oxotetrahydrofuran-2-yl]-3-methylocta-2,6-dien-1-yl group at position 3, chlorine at position 5, and a methyl group at position 6. A meroterpenoid produced by the soil fungus, Acremonium sclerotigenum. It is a promising drug candidate against the tropical disease, African trypanosomiasis. D000890 - Anti-Infective Agents > D000977 - Antiparasitic Agents > D000981 - Antiprotozoal Agents

   

5-Hydroxy-3-(hydroxymethyl)-7-oxabicyclo[4.1.0]hept-3-en-2-one

5-Hydroxy-3-(hydroxymethyl)-7-oxabicyclo[4.1.0]hept-3-en-2-one

C7H8O4 (156.0423)


   

Betaenone C

Betaenone C

C21H34O5 (366.2406)


   
   

phytuberol

[3aR-(3aalpha,5abeta,8beta,9alphaR*)]- 5,5a,6,7,8,9-Hexahydro-alpha,alpha,3a,5a-tetramethyl-3aH-furo[3,2-c]isobenzofuran-8-methanol

C15H24O3 (252.1725)


   

4-Aminopyrrolidine-2-carboxylic acid

4-Aminopyrrolidine-2-carboxylic acid

C5H10N2O2 (130.0742)


   

Phomacin B

Phomacin B

C25H37NO5 (431.2672)


A cytochalasin isolated from a fungus Phoma sp. that has been shown to possess potent inhibitory activity against HT-29 colonic adenocarcinoma cells.

   
   

Phomacin A

Phomacin A

C25H37NO5 (431.2672)


A cytochalasin isolated from a fungus Phoma sp. that has been shown to possess potent inhibitory activity against HT-29 colonic adenocarcinoma cells.

   

Betaenone A

Betaenone A

C21H34O5 (366.2406)


A carbotricyclic compound that is tricyclo[6.2.2.0(2,7)]dodecan-9-one which is substituted by hydroxy groups at positions 1, 4, and 11; by methyl groups at positions 4, 6, 8, and 11; by a hydroxymethylene group at position 10; and by a (2R)-butan-2-yl group at position 12 (the 1S,2S,4R,6R,7S,8R,10Z,11S,12R stereoisomer). A phytotoxin produced by Pleospora betae, the causal fungus of leaf spot disease on sugar beet.

   

Betaenone B

Betaenone B

C21H36O5 (368.2563)


   

Nobiletin

4H-1-Benzopyran-4-one, 2-(3,4-dimethoxyphenyl)-5,6,7,8-tetramethoxy- (9CI)

C21H22O8 (402.1315)


D020011 - Protective Agents > D000975 - Antioxidants Nobiletin is a poly-methoxylated flavone from the citrus peel that improves memory loss. Nobiletin is a retinoid acid receptor-related orphan receptors (RORs) agonist. Nobiletin can reduce reactive oxygen species (ROS) levels in differentiated C2C12 myotubes and has anti-inflammation and anti-cancer properties, including anti-angiogenesis, anti-proliferation, anti-metastasis and induced apoptosis[1][2][3][4]. Nobiletin is a poly-methoxylated flavone from the citrus peel that improves memory loss. Nobiletin is a retinoid acid receptor-related orphan receptors (RORs) agonist. Nobiletin can reduce reactive oxygen species (ROS) levels in differentiated C2C12 myotubes and has anti-inflammation and anti-cancer properties, including anti-angiogenesis, anti-proliferation, anti-metastasis and induced apoptosis[1][2][3][4].

   

2-Hydroxy-6-methoxybenzoic acid

2-Hydroxy-6-methoxybenzoic acid

C8H8O4 (168.0423)


2-Hydroxy-6-methoxybenzoic acid can be used for the determination of acetylsalicylic acid and its major metabolite, salicylic acid, in animal plasma. 2-Hydroxy-6-methoxybenzoic acid exhibits significant analgesic effects[1][2]. 2-Hydroxy-6-methoxybenzoic acid can be used for the determination of acetylsalicylic acid and its major metabolite, salicylic acid, in animal plasma. 2-Hydroxy-6-methoxybenzoic acid exhibits significant analgesic effects[1][2].

   

DIMETHYL TEREPHTHALATE

DIMETHYL TEREPHTHALATE

C10H10O4 (194.0579)


D004785 - Environmental Pollutants > D012989 - Soil Pollutants D010575 - Pesticides > D007302 - Insect Repellents D020011 - Protective Agents D016573 - Agrochemicals CONFIDENCE standard compound; INTERNAL_ID 783; DATASET 20200303_ENTACT_RP_MIX508; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 10066; ORIGINAL_PRECURSOR_SCAN_NO 10061 CONFIDENCE standard compound; INTERNAL_ID 783; DATASET 20200303_ENTACT_RP_MIX508; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 10088; ORIGINAL_PRECURSOR_SCAN_NO 10085 CONFIDENCE standard compound; INTERNAL_ID 783; DATASET 20200303_ENTACT_RP_MIX508; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 10163; ORIGINAL_PRECURSOR_SCAN_NO 10160 CONFIDENCE standard compound; INTERNAL_ID 783; DATASET 20200303_ENTACT_RP_MIX508; DATA_PROCESSING MERGING RMBmix ver. 0.2.7; DATA_PROCESSING PRESCREENING Shinyscreen ver. 0.8.0; ORIGINAL_ACQUISITION_NO 10132; ORIGINAL_PRECURSOR_SCAN_NO 10128

   

barceloneic acid A

barceloneic acid A

C16H16O7 (320.0896)


D000893 - Anti-Inflammatory Agents > D000894 - Anti-Inflammatory Agents, Non-Steroidal > D012459 - Salicylates

   

Thujone

Bicyclo[3.1.0]hexan-3-one,4-methyl-1-(1-methylethyl)-

C10H16O (152.1201)


α-Thujone is a monoterpene isolated from Thuja occidentalis essential oil with potent anti-tumor activities. α-Thujone is a reversible modulator of the GABA type A receptor and the IC50 for α-Thujone is 21 μM in suppressing the GABA-induced currents. α-Thujone induces ROS accumulation-dependent cytotoxicity, also induces cell apoptosis and autophagy. α-Thujone has antinociceptive, insecticidal, and anthelmintic activity, and easily penetrates the blood-brain barrier[1][2][3]. α-Thujone is a monoterpene isolated from Thuja occidentalis essential oil with potent anti-tumor activities. α-Thujone is a reversible modulator of the GABA type A receptor and the IC50 for α-Thujone is 21 μM in suppressing the GABA-induced currents. α-Thujone induces ROS accumulation-dependent cytotoxicity, also induces cell apoptosis and autophagy. α-Thujone has antinociceptive, insecticidal, and anthelmintic activity, and easily penetrates the blood-brain barrier[1][2][3]. α-Thujone is a monoterpene isolated from Thuja occidentalis essential oil with potent anti-tumor activities. α-Thujone is a reversible modulator of the GABA type A receptor and the IC50 for α-Thujone is 21 μM in suppressing the GABA-induced currents. α-Thujone induces ROS accumulation-dependent cytotoxicity, also induces cell apoptosis and autophagy. α-Thujone has antinociceptive, insecticidal, and anthelmintic activity, and easily penetrates the blood-brain barrier[1][2][3].

   

Xanthepinone

Xanthepinone

C16H12O8 (332.0532)


   

4,5,6-trihydroxy-7-methylphthalide

4,5,6-trihydroxy-7-methylphthalide

C9H8O5 (196.0372)


   

3,6-Diphenyl-4-methoxy-o-benzoquinone

3,6-Diphenyl-4-methoxy-o-benzoquinone

C19H14O3 (290.0943)


   

7-methyl-1,3-dihydro-2-benzofuran-4,5,6-triol

7-methyl-1,3-dihydro-2-benzofuran-4,5,6-triol

C9H10O4 (182.0579)


   

barceloneic acid B

barceloneic acid B

C16H14O8 (334.0689)


   

solavetivone

(2R,5S,6R)-6,10-dimethyl-2-prop-1-en-2-yl-spiro[4.5]dec-9-en-8-one

C15H22O (218.1671)


A cyclic ketone derived from spiro[4.5]dec-6-en-8-one by substitution of hydrogens by methyl groups at positions 6 and 10, and by an isopropenyl group at position 2 (the (2R,5S,10R)-diastereoisomer).

   

barceloneic lactone

barceloneic lactone

C16H14O6 (302.079)


   

Deoxypreussomerin A

Deoxypreussomerin A

C20H12O5 (332.0685)


   

Etrogol

2-{4-[(3-methylbut-2-en-1-yl)oxy]phenyl}ethan-1-ol

C13H18O2 (206.1307)


A natural product found in Stachylidium species.

   

Epicoccolide B

Epicoccolide B

C18H14O8 (358.0689)


   

CHEMBL496051

CHEMBL496051

C19H16O4 (308.1049)


   

8-Methoxycirsilineol

8-Methoxycirsilineol

C19H18O8 (374.1002)


   

phomalevone A

phomalevone A

C30H26O10 (546.1526)


A biaryl that is 5,5,10a,10a-tetrahydro-9H,9H-2,2-bixanthene-9,9-dione substituted by hydroxy groups at positions 1, 1, 5, 5, 8 and 8 and methyl groups at positions 3, 3, 10a and 10a. Isolated from the cultures of a Hawaiian isolate of the fungus Phoma species, it exhibits antibacterial activity.

   

phomalevone C

phomalevone C

C30H24O10 (544.1369)


A biaryl that is 5,10a-dihydro-9H,9H-2,2-bixanthene-5,9,9(10aH)-trione substituted by hydroxy groups at positions 1, 1, 5, 8 and 8 and methyl groups at positions 3, 3, 10a and 10a. Isolated from the cultures of a Hawaiian isolate of the fungus Phoma species, it exhibits antibacterial and antifungal activities.

   

Phomalevone B

Phomalevone B

C30H26O10 (546.1526)


A member of the class of biphenyls that is 6,6-dimethylbiphenyl-2,2,4,4-tetrol which has been substituted by 3,6-dihydroxy-2-methylbenzoyl groups at positions 3 and 3. Isolated from the cultures of a Hawaiian isolate of the fungus Phoma species, it exhibits antibacterial and antifungal activities.

   

Topopyrone B

Topopyrone B

C18H9ClO7 (372.0037)


A naphthochromene that is 4H-naphtho[2,3-g]chromene-4,6,11-trione substituted by a chloro group at position 8, hydroxy groups at positions 5, 7 and 9 and a methyl group at position 2. It is isolated from a fungal strain Phoma sp.BAUA2861 and acts as an inhibitor of the enzyme topoisomerase I. D000970 - Antineoplastic Agents > D059003 - Topoisomerase Inhibitors > D059004 - Topoisomerase I Inhibitors D004791 - Enzyme Inhibitors

   

Topopyrone A

Topopyrone A

C18H9ClO7 (372.0037)


A naphthochromene that is 4H-naphtho[2,3-h]chromene-4,7,12-trione substituted by a chloro group at position 10, hydroxy groups at positions 5, 9 and 11 and a methyl group at position 2. It is isolated from a fungal strain Phoma sp.BAUA2861 and acts as an inhibitor of the enzyme topoisomerase I. D000970 - Antineoplastic Agents > D059003 - Topoisomerase Inhibitors > D059004 - Topoisomerase I Inhibitors D004791 - Enzyme Inhibitors

   

1,7-Dihydroxy-3-methylanthracene-9,10-dione

1,7-Dihydroxy-3-methylanthracene-9,10-dione

C15H10O4 (254.0579)


   
   

CHEMBL500238

CHEMBL500238

C19H16O5 (324.0998)


   

1,3,6,8-tetrahydroxy-2-(1-hydroxyethyl)anthracene-9,10-dione

1,3,6,8-tetrahydroxy-2-(1-hydroxyethyl)anthracene-9,10-dione

C16H12O7 (316.0583)


   

1,2,3,6,8-pentahydroxy-7-(1-methoxyethyl)anthracene-9,10-dione

1,2,3,6,8-pentahydroxy-7-(1-methoxyethyl)anthracene-9,10-dione

C17H14O8 (346.0689)


   

Isofraxidin-7-glucoside

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

C17H20O10 (384.1056)


Calycanthoside is a natural product found in Salsola laricifolia, Boeremia exigua, and other organisms with data available.

   

Scopoletin

Scopoletin

C10H8O4 (192.0423)


relative retention time with respect to 9-anthracene Carboxylic Acid is 0.636 relative retention time with respect to 9-anthracene Carboxylic Acid is 0.637 relative retention time with respect to 9-anthracene Carboxylic Acid is 0.629 relative retention time with respect to 9-anthracene Carboxylic Acid is 0.631 IPB_RECORD: 1582; CONFIDENCE confident structure Scopoletin is an inhibitor of acetylcholinesterase (AChE). Scopoletin is an inhibitor of acetylcholinesterase (AChE).

   

Genistein

Sophoricol

C15H10O5 (270.0528)


C274 - Antineoplastic Agent > C163758 - Targeted Therapy Agent > C1821 - Selective Estrogen Receptor Modulator D006730 - Hormones, Hormone Substitutes, and Hormone Antagonists > D006728 - Hormones > D004967 - Estrogens C274 - Antineoplastic Agent > C129818 - Antineoplastic Hormonal/Endocrine Agent > C481 - Antiestrogen C471 - Enzyme Inhibitor > C1404 - Protein Kinase Inhibitor > C1967 - Tyrosine Kinase Inhibitor C147908 - Hormone Therapy Agent > C548 - Therapeutic Hormone > C483 - Therapeutic Estrogen D004791 - Enzyme Inhibitors > D047428 - Protein Kinase Inhibitors D020011 - Protective Agents > D016588 - Anticarcinogenic Agents C274 - Antineoplastic Agent > C1742 - Angiogenesis Inhibitor C147908 - Hormone Therapy Agent > C547 - Hormone Antagonist D000970 - Antineoplastic Agents C1892 - Chemopreventive Agent Disclaimer: While authors make an effort to ensure that the content of this record is accurate, the authors make no representations or warranties in relation to the accuracy or completeness of the record. This record do not reflect any viewpoints of the affiliation and organization to which the authors belong. Acquisition and generation of the data is financially supported by the Max-Planck-Society IPB_RECORD: 2181; CONFIDENCE confident structure Genistein, a soy isoflavone, is a multiple tyrosine kinases (e.g., EGFR) inhibitor which acts as a chemotherapeutic agent against different types of cancer, mainly by altering apoptosis, the cell cycle, and angiogenesis and inhibiting metastasis. Genistein, a soy isoflavone, is a multiple tyrosine kinases (e.g., EGFR) inhibitor which acts as a chemotherapeutic agent against different types of cancer, mainly by altering apoptosis, the cell cycle, and angiogenesis and inhibiting metastasis.

   

Emodin

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

C15H10O5 (270.0528)


C471 - Enzyme Inhibitor > C1404 - Protein Kinase Inhibitor > C1967 - Tyrosine Kinase Inhibitor D004791 - Enzyme Inhibitors > D047428 - Protein Kinase Inhibitors D005765 - Gastrointestinal Agents > D002400 - Cathartics CONFIDENCE isolated standard relative retention time with respect to 9-anthracene Carboxylic Acid is 1.288 relative retention time with respect to 9-anthracene Carboxylic Acid is 1.291 relative retention time with respect to 9-anthracene Carboxylic Acid is 1.286 relative retention time with respect to 9-anthracene Carboxylic Acid is 1.293 Emodin (Frangula emodin), an anthraquinone derivative, is an anti-SARS-CoV compound. Emodin blocks the SARS coronavirus spike protein and angiotensin-converting enzyme 2 (ACE2) interaction[1]. Emodin inhibits casein kinase-2 (CK2). Anti-inflammatory and anticancer effects[2]. Emodin is a potent selective 11β-HSD1 inhibitor with the IC50 of 186 and 86 nM for human and mouse 11β-HSD1, respectively. Emodin ameliorates metabolic disorder in diet-induced obese mice[3]. Emodin (Frangula emodin), an anthraquinone derivative, is an anti-SARS-CoV compound. Emodin blocks the SARS coronavirus spike protein and angiotensin-converting enzyme 2 (ACE2) interaction[1]. Emodin inhibits casein kinase-2 (CK2). Anti-inflammatory and anticancer effects[2]. Emodin is a potent selective 11β-HSD1 inhibitor with the IC50 of 186 and 86 nM for human and mouse 11β-HSD1, respectively. Emodin ameliorates metabolic disorder in diet-induced obese mice[3].

   

Lovastatin

Lovastatin (Mevacor)

C24H36O5 (404.2563)


C - Cardiovascular system > C10 - Lipid modifying agents > C10A - Lipid modifying agents, plain > C10AA - Hmg coa reductase inhibitors D057847 - Lipid Regulating Agents > D000960 - Hypolipidemic Agents > D000924 - Anticholesteremic Agents D004791 - Enzyme Inhibitors > D019161 - Hydroxymethylglutaryl-CoA Reductase Inhibitors C78276 - Agent Affecting Digestive System or Metabolism > C29703 - Antilipidemic Agent C471 - Enzyme Inhibitor > C1655 - HMG-CoA Reductase Inhibitor CONFIDENCE standard compound; INTERNAL_ID 2212 D009676 - Noxae > D000963 - Antimetabolites relative retention time with respect to 9-anthracene Carboxylic Acid is 1.415 relative retention time with respect to 9-anthracene Carboxylic Acid is 1.416 relative retention time with respect to 9-anthracene Carboxylic Acid is 1.421 relative retention time with respect to 9-anthracene Carboxylic Acid is 1.419 Lovastatin is a cell-permeable HMG-CoA reductase inhibitor used to lower cholesterol. Lovastatin is a cell-permeable HMG-CoA reductase inhibitor used to lower cholesterol.

   

β-Carotene

1-(1,2,3,4,5-Pentahydroxypent-1-yl)-1,2,3,4-tetrahydro-beta-carboline-3-carboxylate

C40H56 (536.4382)


The novel carbohydrate-derived b-carboline, 1-pentahydroxypentyl-1,2,3,4-tetrahydro-b-carboline-3-carboxylic acid, was identified in fruit- and vegetable-derived products such as juices, jams, and tomato sauces. This compound occurred as two diastereoisomers, a cis isomer (the major compound) and a trans isomer, ranging from undetectable amounts to 6.5 ug/g. Grape, tomato, pineapple, and tropical juices exhibited the highest amount of this alkaloid (up to 3.8 mg/L), whereas apple, banana, and peach juices showed very low or nondetectable levels. This tetrahydro-b-carboline was also found in jams (up to 0.45 ug/g), and a relative high amount was present in tomato concentrate (6.5 ug/g) and sauce (up to 1.8 ug/g). This b-carboline occurred in fruit-derived products as a glycoconjugate from a chemical condensation of d-glucose and l-tryptophan that is highly favored at low pH values and high temperature. Production, processing treatments, and storage of fruit juices and jams can then release this b-carboline. Fruit-derived products and other foods containing this compound might be an exogenous dietary source of this glucose-derived tetrahydro-b-carboline.(PMID: 12137498) [HMDB] Window width to select the precursor ion was 3 Da.; CONE_VOLTAGE is 20 V.; This record was created by the financial support of MEXT/JSPS KAKENHI Grant Number 19HP8024 to the Mass Spectrometry Society of Japan. D - Dermatologicals > D02 - Emollients and protectives > D02B - Protectives against uv-radiation > D02BB - Protectives against uv-radiation for systemic use A - Alimentary tract and metabolism > A11 - Vitamins > A11C - Vitamin a and d, incl. combinations of the two > A11CA - Vitamin a, plain D020011 - Protective Agents > D000975 - Antioxidants > D002338 - Carotenoids D018977 - Micronutrients > D014815 - Vitamins > D000072664 - Provitamins Window width to select the precursor ion was 3 Da.; CONE_VOLTAGE is 10 V.; This record was created by the financial support of MEXT/JSPS KAKENHI Grant Number 19HP8024 to the Mass Spectrometry Society of Japan.

   

(1R)-2-chloro-1,7-dihydroxy-3,9-dimethoxy-1-methylbenzo[c]chromene-4,6-dione

NCGC00380847-01!(1R)-2-chloro-1,7-dihydroxy-3,9-dimethoxy-1-methylbenzo[c]chromene-4,6-dione

C16H13ClO7 (352.035)


   

4,8-dihydroxy-7-(hydroxymethyl)-6-methoxy-3,4-dihydro-2H-naphthalen-1-one

NCGC00180523-02!4,8-dihydroxy-7-(hydroxymethyl)-6-methoxy-3,4-dihydro-2H-naphthalen-1-one

C12H14O5 (238.0841)


   

p-Hydroxybenzaldehyde

p-Hydroxybenzaldehyde

C7H6O2 (122.0368)


p-Hydroxybenzaldehyde is a one of the major components in vanilla aroma, with antagonistic effect on GABAA receptor of the α1β2γ2S subtype at high concentrations. p-Hydroxybenzaldehyde is a one of the major components in vanilla aroma, with antagonistic effect on GABAA receptor of the α1β2γ2S subtype at high concentrations. p-Hydroxybenzaldehyde is a one of the major components in vanilla aroma, with antagonistic effect on GABAA receptor of the α1β2γ2S subtype at high concentrations.

   

4-Hydroxybenzaldehyde

4-Hydroxybenzaldehyde

C7H6O2 (122.0368)


p-Hydroxybenzaldehyde is a one of the major components in vanilla aroma, with antagonistic effect on GABAA receptor of the α1β2γ2S subtype at high concentrations. p-Hydroxybenzaldehyde is a one of the major components in vanilla aroma, with antagonistic effect on GABAA receptor of the α1β2γ2S subtype at high concentrations. p-Hydroxybenzaldehyde is a one of the major components in vanilla aroma, with antagonistic effect on GABAA receptor of the α1β2γ2S subtype at high concentrations.

   

Pinolidoxin

Pinolidoxin

C18H26O6 (338.1729)


   

4,8-dihydroxy-7-(hydroxymethyl)-6-methoxy-3,4-dihydro-2H-naphthalen-1-one

4,8-dihydroxy-7-(hydroxymethyl)-6-methoxy-3,4-dihydro-2H-naphthalen-1-one

C12H14O5 (238.0841)


   

gamma-Carotene

beta,psi-Carotene

C40H56 (536.4382)


A cyclic carotene obtained by the cyclisation of lycopene. Window width to select the precursor ion was 3 Da.; CONE_VOLTAGE is 10 V.; This record was created by the financial support of MEXT/JSPS KAKENHI Grant Number 19HP8024 to the Mass Spectrometry Society of Japan.

   

Eleutheroside B1

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

C17H20O10 (384.1056)


   

Phomarin

1,6-dihydroxy-3-methyl-9,10-dihydroanthracene-9,10-dione

C15H10O4 (254.0579)


   

(4R,5S,7R,11x)-11,12-Dihydroxy-1(10)-spirovetiven-2-one 12-glucoside

2-(2-hydroxy-1-{[3,4,5-trihydroxy-6-(hydroxymethyl)oxan-2-yl]oxy}propan-2-yl)-6,10-dimethylspiro[4.5]dec-6-en-8-one

C21H34O8 (414.2254)


   

6-(Methylthio)hexyl isothiocyanate

1-isothiocyanato-6-(methylsulfanyl)hexane

C8H15NS2 (189.0646)


   

Berteroin

1-isothiocyanato-5-(methylsulfanyl)pentane

C7H13NS2 (175.0489)


   

7-(Methylthio)heptanenitrile

7-(methylsulfanyl)heptanenitrile

C8H15NS (157.0925)


   

Methyl 1-methoxy-1H-indole-3-carboxylate

Methyl 1-methoxy-1H-indole-3-carboxylate

C11H11NO3 (205.0739)


   

(4R,5S,7R,11R)-11,12-Dihydroxy-1(10)-spirovetiven-2-one

2-(1,2-dihydroxypropan-2-yl)-6,10-dimethylspiro[4.5]dec-6-en-8-one

C15H24O3 (252.1725)


   

Pogostol

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

C15H26O (222.1984)


   

Solanolone

3,4,7,10-tetrahydroxy-6-methyl-1,2,3,4,4a,9,10,10a-octahydrophenanthren-9-one

C15H18O5 (278.1154)


   

Katahdinone

6,10-dimethyl-2-(prop-1-en-2-yl)spiro[4.5]dec-6-en-8-one

C15H22O (218.1671)


   

ent-8(14),15-Pimaradiene

7-ethenyl-1,1,4a,7-tetramethyl-1,2,3,4,4a,4b,5,6,7,9,10,10a-dodecahydrophenanthrene

C20H32 (272.2504)


   

3,11,12-Trihydroxy-1(10)-spirovetiven-2-one

2-(1,2-dihydroxypropan-2-yl)-9-hydroxy-6,10-dimethylspiro[4.5]dec-6-en-8-one

C15H24O4 (268.1675)


   

(±)-Mellein

(3R)-8-hydroxy-3-methyl-3,4-dihydro-1H-2-benzopyran-1-one

C10H10O3 (178.063)


D009676 - Noxae > D011042 - Poisons > D009793 - Ochratoxins D009676 - Noxae > D011042 - Poisons > D009183 - Mycotoxins

   

FA 17:6

(10R,8Z,9Z)-heptadeca-8,9-dien-11,13-diynoic acid

C17H22O2 (258.162)


   

FA 18:6

(11R,9Z,10Z)-octadeca-9,10-dien-12,14-diynoic acid

C18H24O2 (272.1776)


   

AC1L4LG3

(4R,12R,20R,28R)-4,12,20,28-tetrahydroxytritriacontane-2,10,18,26-tetrone

C33H60O8 (584.4288)


   

stemar-13-ene

(4aS,6aS,9R,11aR,11bS)-4,4,8,11b-tetramethyl-1,2,3,4,4a,5,6,6a,9,10,11,11b-dodecahydro-9,11a-methanocyclohepta[a]naphthalene

C20H32 (272.2504)


   

solanapyrone C

solanapyrone C

C19H25NO4 (331.1783)


   

Tyrosol

InChI=1\C8H10O2\c9-6-5-7-1-3-8(10)4-2-7\h1-4,9-10H,5-6H

C8H10O2 (138.0681)


Tyrosol, also known as 4-hydroxyphenylethanol or 4-(2-hydroxyethyl)phenol, is a member of the class of compounds known as tyrosols. Tyrosols are organic aromatic compounds containing a phenethyl alcohol moiety that carries a hydroxyl group at the 4-position of the benzene group. Tyrosol is soluble (in water) and a very weakly acidic compound (based on its pKa). Tyrosol can be synthesized from 2-phenylethanol. Tyrosol is also a parent compound for other transformation products, including but not limited to, hydroxytyrosol, crosatoside B, and oleocanthal. Tyrosol is a mild, sweet, and floral tasting compound and can be found in a number of food items such as breadnut tree seed, sparkleberry, loquat, and savoy cabbage, which makes tyrosol a potential biomarker for the consumption of these food products. Tyrosol can be found primarily in feces and urine, as well as in human prostate tissue. Tyrosol exists in all eukaryotes, ranging from yeast to humans. Tyrosol present in wine is also shown to be cardioprotective. Samson et al. has shown that tyrosol-treated animals showed significant increase in the phosphorylation of Akt, eNOS and FOXO3a. In addition, tyrosol also induced the expression of longevity protein SIRT1 in the heart after myocardial infarction in a rat MI model. Hence tyrosols SIRT1, Akt and eNOS activating power adds another dimension to the wine research, because it adds a great link to the French paradox. In conclusion these findings suggest that tyrosol induces myocardial protection against ischemia related stress by inducing survival and longevity proteins that may be considered as anti-aging therapy for the heart . D002317 - Cardiovascular Agents > D000889 - Anti-Arrhythmia Agents D020011 - Protective Agents > D000975 - Antioxidants Tyrosol is a derivative of phenethyl alcohol. Tyrosol attenuates pro-inflammatory cytokines from cultured astrocytes and NF-κB activation. Anti-oxidative and anti-inflammatory effects[1]. Tyrosol is a derivative of phenethyl alcohol. Tyrosol attenuates pro-inflammatory cytokines from cultured astrocytes and NF-κB activation. Anti-oxidative and anti-inflammatory effects[1].

   

rishitin

InChI=1\C14H22O2\c1-8(2)10-4-5-11-7-13(15)14(16)9(3)12(11)6-10\h9-10,13-16H,1,4-7H2,2-3H3\t9-,10+,13+,14+\m0\s

C14H22O2 (222.162)


   

(4R,5S,7R,11R)-11,12-Dihydroxy-1(10)-spirovetiven-2-one

2-(1,2-dihydroxypropan-2-yl)-6,10-dimethylspiro[4.5]dec-6-en-8-one

C15H24O3 (252.1725)


(4R,5S,7R,11x)-11,12-Dihydroxy-1(10)-spirovetiven-2-one is found in potato. (4R,5S,7R,11x)-11,12-Dihydroxy-1(10)-spirovetiven-2-one is a constituent of potatoes infected with Phoma exigua. Constituent of potatoes infected with Phoma exigua. (4R,5S,7R,11x)-11,12-Dihydroxy-1(10)-spirovetiven-2-one is found in potato.

   

Eleutheroside B1

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

C17H20O10 (384.1056)


Calycanthoside is found in herbs and spices. Calycanthoside is a constituent of Calycanthus occidentalis (Californian allspice) From Siberian ginseng (Eleutherococcus (Acanthopanax) senticosus). Eleutheroside B1 is found in tea and potato.

   

Malyngamide A

Malyngamide A

C29H45ClN2O6 (552.2966)


A natural product found in Lyngbya majuscula.

   

rostratin A

rostratin A

C18H24N2O6S2 (428.1076)


An organic disulfide isolated from the whole broth of the marine-derived fungus Exserohilum rostratum and has been shown to exhibit antineoplastic activity.

   

7-Epi-Zeaenol

7-Epi-Zeaenol

C19H24O7 (364.1522)


A macrolide that is a C-7 epimer of zeaenol. Isolated from Fungi, it exhibits inhibitory activity against NF-kappaB.

   

Aphidicolin-17-monoacetate

Aphidicolin-17-monoacetate

C22H36O5 (380.2563)


A natural product found in Tolypocladium inflatum.

   

Solanapyrone B

Solanapyrone B

C18H24O4 (304.1675)


   

Phomacin C

Phomacin C

C25H37NO4 (415.2722)


A cytochalasin isolated from a fungus Phoma sp. that has been shown to possess potent inhibitory activity against HT-29 colonic adenocarcinoma cells.

   
   

1-isothiocyanato-6-(methylsulfanyl)hexane

1-isothiocyanato-6-(methylsulfanyl)hexane

C8H15NS2 (189.0646)


A isothiocyanate that is hexane in which two of the terminal methyl hydrogens at positions 1 and 6 have been replaced by isothiocyanato and methylsulfanyl groups.

   

(4r,6r)-4-hydroxy-6-[(1e,4r,5e,8r,9e,11s,12r,13e,15z)-4,8,12,16-tetrahydroxy-11,13-dimethyl-15-[(2r,4s,6s)-2,4,6-trimethyloctylidene]hexadeca-1,5,9,13-tetraen-1-yl]oxan-2-one

(4r,6r)-4-hydroxy-6-[(1e,4r,5e,8r,9e,11s,12r,13e,15z)-4,8,12,16-tetrahydroxy-11,13-dimethyl-15-[(2r,4s,6s)-2,4,6-trimethyloctylidene]hexadeca-1,5,9,13-tetraen-1-yl]oxan-2-one

C34H56O7 (576.4026)


   

5-acetyl-3,5-dimethoxy-2-methyl-4-(2-methylbutanoyl)cyclopent-2-en-1-one

5-acetyl-3,5-dimethoxy-2-methyl-4-(2-methylbutanoyl)cyclopent-2-en-1-one

C15H22O5 (282.1467)


   

4,7,8-trihydroxy-3-methyl-3,4-dihydro-2-benzopyran-1-one

4,7,8-trihydroxy-3-methyl-3,4-dihydro-2-benzopyran-1-one

C10H10O5 (210.0528)


   

1,3,3-trimethyl-2-[(9e,11e,13e,15e,17e)-3,7,12,16-tetramethyl-18-(2,6,6-trimethylcyclohex-1-en-1-yl)octadeca-1,3,5,7,9,11,13,15,17-nonaen-1-yl]cyclohex-1-ene

1,3,3-trimethyl-2-[(9e,11e,13e,15e,17e)-3,7,12,16-tetramethyl-18-(2,6,6-trimethylcyclohex-1-en-1-yl)octadeca-1,3,5,7,9,11,13,15,17-nonaen-1-yl]cyclohex-1-ene

C40H56 (536.4382)


   

(3s,6e,8r,12s,14s)-5,7,9-trihydroxy-8-methyl-13,16-dioxa-4-azatetracyclo[15.2.2.1³,⁶.0¹²,¹⁴]docosa-1(19),4,6,17,20-pentaen-22-one

(3s,6e,8r,12s,14s)-5,7,9-trihydroxy-8-methyl-13,16-dioxa-4-azatetracyclo[15.2.2.1³,⁶.0¹²,¹⁴]docosa-1(19),4,6,17,20-pentaen-22-one

C20H23NO6 (373.1525)


   

3,5,9,13,17-pentahydroxy-20-(hydroxymethyl)-16,18,22,24,26-pentamethyloctacosa-6,10,14,18,20-pentaenoic acid

3,5,9,13,17-pentahydroxy-20-(hydroxymethyl)-16,18,22,24,26-pentamethyloctacosa-6,10,14,18,20-pentaenoic acid

C34H58O8 (594.4131)


   

2-methoxy-3-[2-methyl-3-(3-methylbut-2-en-1-yl)oxiran-2-yl]-4-methylidenecyclohexyl 4,5-dihydroxyhex-2-enoate

2-methoxy-3-[2-methyl-3-(3-methylbut-2-en-1-yl)oxiran-2-yl]-4-methylidenecyclohexyl 4,5-dihydroxyhex-2-enoate

C22H34O6 (394.2355)


   

5,13,18-trihydroxy-16-[(2-hydroxyphenyl)methyl]-9,15-dimethyl-14-methylidene-5h,6h,7h,8h,9h,10h,12ah,13h,15h,15ah,16h-oxacyclotetradeca[2,3-d]isoindol-2-one

5,13,18-trihydroxy-16-[(2-hydroxyphenyl)methyl]-9,15-dimethyl-14-methylidene-5h,6h,7h,8h,9h,10h,12ah,13h,15h,15ah,16h-oxacyclotetradeca[2,3-d]isoindol-2-one

C29H37NO6 (495.2621)


   

1,7-dihydroxy-3-(hydroxymethyl)anthracene-9,10-dione

1,7-dihydroxy-3-(hydroxymethyl)anthracene-9,10-dione

C15H10O5 (270.0528)


   

16-benzyl-5,18-dihydroxy-9,14,15-trimethyl-5h,6h,7h,8h,9h,10h,12ah,15h,15ah,16h-oxacyclotetradeca[3,2-d]isoindol-2-one

16-benzyl-5,18-dihydroxy-9,14,15-trimethyl-5h,6h,7h,8h,9h,10h,12ah,15h,15ah,16h-oxacyclotetradeca[3,2-d]isoindol-2-one

C29H37NO4 (463.2722)


   

5,6,16-trihydroxy-7,9,12,13-tetramethyl-14-(2-methylpropyl)-5h,6h,7h,8h,10ah,13h,13ah,14h-oxacyclododeca[2,3-d]isoindol-2-one

5,6,16-trihydroxy-7,9,12,13-tetramethyl-14-(2-methylpropyl)-5h,6h,7h,8h,10ah,13h,13ah,14h-oxacyclododeca[2,3-d]isoindol-2-one

C25H37NO5 (431.2672)


   

(1s,2s,7s,10s,12r)-2,6,6,13-tetramethyltetracyclo[10.3.1.0¹,¹⁰.0²,⁷]hexadec-13-ene

(1s,2s,7s,10s,12r)-2,6,6,13-tetramethyltetracyclo[10.3.1.0¹,¹⁰.0²,⁷]hexadec-13-ene

C20H32 (272.2504)


   

(2s,3r,4r,4as,5r,7r,8as)-3-[(2r)-butan-2-yl]-2,7-dihydroxy-7-(hydroxymethyl)-4-(3-hydroxypropanoyl)-2,4,5-trimethyl-hexahydronaphthalen-1-one

(2s,3r,4r,4as,5r,7r,8as)-3-[(2r)-butan-2-yl]-2,7-dihydroxy-7-(hydroxymethyl)-4-(3-hydroxypropanoyl)-2,4,5-trimethyl-hexahydronaphthalen-1-one

C21H36O6 (384.2512)


   

(2r,4as,4bs,8as,10s)-2-ethenyl-2,4b,8,8-tetramethyl-3,4,5,6,7,8a,9,10-octahydrophenanthrene-4a,10-diol

(2r,4as,4bs,8as,10s)-2-ethenyl-2,4b,8,8-tetramethyl-3,4,5,6,7,8a,9,10-octahydrophenanthrene-4a,10-diol

C20H32O2 (304.2402)


   

(8s,8ar)-3-[(2r)-butan-2-yl]-8,8a-dihydroxy-4-methyl-7,8-dihydro-1h-isochromen-6-one

(8s,8ar)-3-[(2r)-butan-2-yl]-8,8a-dihydroxy-4-methyl-7,8-dihydro-1h-isochromen-6-one

C14H20O4 (252.1362)


   

5,8,15,18-tetrahydroxy-1,11-bis(methylsulfanyl)-3,13-diazapentacyclo[11.7.0.0³,¹¹.0⁴,⁹.0¹⁴,¹⁹]icosane-2,12-dione

5,8,15,18-tetrahydroxy-1,11-bis(methylsulfanyl)-3,13-diazapentacyclo[11.7.0.0³,¹¹.0⁴,⁹.0¹⁴,¹⁹]icosane-2,12-dione

C20H30N2O6S2 (458.1545)


   

1-(3,5-dimethyl-6-phenylhex-3-en-1-yl)-4,7-dihydroxy-6-[(4-hydroxy-4,6-dimethyloct-2-enoyl)oxy]-2,8-dioxabicyclo[3.2.1]octane-3,4,5-tricarboxylic acid

1-(3,5-dimethyl-6-phenylhex-3-en-1-yl)-4,7-dihydroxy-6-[(4-hydroxy-4,6-dimethyloct-2-enoyl)oxy]-2,8-dioxabicyclo[3.2.1]octane-3,4,5-tricarboxylic acid

C33H44O13 (648.2782)


   

(1r,4s,5r,6r,9r,11r,14s,15r,16r,19r)-5,15-dihydroxy-21,22-dithia-3,13-diazaheptacyclo[14.4.1.1⁶,¹¹.0¹,¹³.0³,¹¹.0⁴,⁹.0¹⁴,¹⁹]docosane-2,8,12,18-tetrone

(1r,4s,5r,6r,9r,11r,14s,15r,16r,19r)-5,15-dihydroxy-21,22-dithia-3,13-diazaheptacyclo[14.4.1.1⁶,¹¹.0¹,¹³.0³,¹¹.0⁴,⁹.0¹⁴,¹⁹]docosane-2,8,12,18-tetrone

C18H18N2O6S2 (422.0606)


   

3-[(7s,13s,21s,24r,27r)-5,8,11,14,22,25,28-heptahydroxy-24-(c-hydroxycarbonimidoylmethyl)-10,30-bis(2-hydroxyethyl)-27-[(1s)-1-hydroxyethyl]-21-(hydroxymethyl)-7-methyl-17,31-dioxo-3-(tetradecan-2-yl)-1-oxa-6,9,12,15,20,23,26,29-octaazacyclotritriaconta-5,8,11,14,22,25,28-heptaen-13-yl]propanoic acid

3-[(7s,13s,21s,24r,27r)-5,8,11,14,22,25,28-heptahydroxy-24-(c-hydroxycarbonimidoylmethyl)-10,30-bis(2-hydroxyethyl)-27-[(1s)-1-hydroxyethyl]-21-(hydroxymethyl)-7-methyl-17,31-dioxo-3-(tetradecan-2-yl)-1-oxa-6,9,12,15,20,23,26,29-octaazacyclotritriaconta-5,8,11,14,22,25,28-heptaen-13-yl]propanoic acid

C51H89N9O17 (1099.6376)


   

(5r,9r,12as,13s,15s,15as,16s,18as)-16-benzyl-5,13,18-trihydroxy-9,15-dimethyl-14-methylidene-5h,6h,7h,8h,9h,10h,12ah,13h,15h,15ah,16h-oxacyclotetradeca[2,3-d]isoindol-2-one

(5r,9r,12as,13s,15s,15as,16s,18as)-16-benzyl-5,13,18-trihydroxy-9,15-dimethyl-14-methylidene-5h,6h,7h,8h,9h,10h,12ah,13h,15h,15ah,16h-oxacyclotetradeca[2,3-d]isoindol-2-one

C29H37NO5 (479.2672)


   

6-[1-(2,3-dimethyloxiran-2-yl)prop-1-en-2-yl]-4-methoxy-3-methylpyran-2-one

6-[1-(2,3-dimethyloxiran-2-yl)prop-1-en-2-yl]-4-methoxy-3-methylpyran-2-one

C14H18O4 (250.1205)


   

7,16-dihydroxy-14-methoxy-5-methyl-2,10-dioxatricyclo[10.4.0.0³,⁸]hexadeca-1(16),3,5,7,12,14-hexaen-9-one

7,16-dihydroxy-14-methoxy-5-methyl-2,10-dioxatricyclo[10.4.0.0³,⁸]hexadeca-1(16),3,5,7,12,14-hexaen-9-one

C16H14O6 (302.079)


   

5-hydroxy-3-[(4-hydroxy-6-methyl-2-oxopyran-3-yl)methyl]-6-{[5-(hydroxymethyl)-2,5,8a-trimethyl-1,4,4a,6,7,8-hexahydronaphthalen-1-yl]methyl}-7-oxabicyclo[4.1.0]hept-3-en-2-one

5-hydroxy-3-[(4-hydroxy-6-methyl-2-oxopyran-3-yl)methyl]-6-{[5-(hydroxymethyl)-2,5,8a-trimethyl-1,4,4a,6,7,8-hexahydronaphthalen-1-yl]methyl}-7-oxabicyclo[4.1.0]hept-3-en-2-one

C28H36O7 (484.2461)


   

(1r)-2-[(2-hydroxyethyl)amino]-4-methoxy-1,5-dimethyl-6-oxocyclohexa-2,4-dien-1-yl (2r)-2-methylbutanoate

(1r)-2-[(2-hydroxyethyl)amino]-4-methoxy-1,5-dimethyl-6-oxocyclohexa-2,4-dien-1-yl (2r)-2-methylbutanoate

C16H25NO5 (311.1733)


   

(1r,6s)-3-(hydroxymethyl)-7-oxabicyclo[4.1.0]hept-3-ene-2,5-dione

(1r,6s)-3-(hydroxymethyl)-7-oxabicyclo[4.1.0]hept-3-ene-2,5-dione

C7H6O4 (154.0266)


   

(2e)-4-hydroxy-2-propylcyclonon-2-ene-1,5-dione

(2e)-4-hydroxy-2-propylcyclonon-2-ene-1,5-dione

C12H18O3 (210.1256)


   

(2e,16e,18e,20e,22e,24e)-2,10,14,19,23-pentamethyl-25-(2,6,6-trimethylcyclohex-1-en-1-yl)pentacosa-2,4,6,8,10,12,14,16,18,20,22,24-dodecaenoic acid

(2e,16e,18e,20e,22e,24e)-2,10,14,19,23-pentamethyl-25-(2,6,6-trimethylcyclohex-1-en-1-yl)pentacosa-2,4,6,8,10,12,14,16,18,20,22,24-dodecaenoic acid

C39H50O2 (550.3811)


   

16-benzyl-5,13,18-trihydroxy-9,15-dimethyl-14-methylidene-5h,6h,7h,8h,9h,10h,12ah,13h,15h,15ah,16h-oxacyclotetradeca[2,3-d]isoindol-2-one

16-benzyl-5,13,18-trihydroxy-9,15-dimethyl-14-methylidene-5h,6h,7h,8h,9h,10h,12ah,13h,15h,15ah,16h-oxacyclotetradeca[2,3-d]isoindol-2-one

C29H37NO5 (479.2672)


   

(6e)-7-[6-(hydroxymethyl)-6-methyl-5-oxo-dihydro-3h-spiro[furo[3,2-b]furan-2,2'-oxolan]-5'-yl]hepta-4,6-dien-2-yl 3-hydroxy-2-methylbutanoate

(6e)-7-[6-(hydroxymethyl)-6-methyl-5-oxo-dihydro-3h-spiro[furo[3,2-b]furan-2,2'-oxolan]-5'-yl]hepta-4,6-dien-2-yl 3-hydroxy-2-methylbutanoate

C23H34O8 (438.2254)


   

8-(acetyloxy)-7-ethenyl-16-hydroxy-1,7,11-trimethyl-3,15-dioxo-14-oxatetracyclo[11.2.1.0²,¹¹.0⁵,¹⁰]hexadec-4-en-12-yl acetate

8-(acetyloxy)-7-ethenyl-16-hydroxy-1,7,11-trimethyl-3,15-dioxo-14-oxatetracyclo[11.2.1.0²,¹¹.0⁵,¹⁰]hexadec-4-en-12-yl acetate

C24H30O8 (446.1941)


   

3-ethoxy-5-hydroxy-7-methoxy-4-(methoxymethyl)-6-methyl-3h-2-benzofuran-1-one

3-ethoxy-5-hydroxy-7-methoxy-4-(methoxymethyl)-6-methyl-3h-2-benzofuran-1-one

C14H18O6 (282.1103)


   

4,7-dihydroxy-1-[4-hydroxy-3-(2-methyl-3-phenylpropylidene)butyl]-6-[(3-hydroxy-6-methyloctanoyl)oxy]-2,8-dioxabicyclo[3.2.1]octane-3,4,5-tricarboxylic acid

4,7-dihydroxy-1-[4-hydroxy-3-(2-methyl-3-phenylpropylidene)butyl]-6-[(3-hydroxy-6-methyloctanoyl)oxy]-2,8-dioxabicyclo[3.2.1]octane-3,4,5-tricarboxylic acid

C32H44O14 (652.2731)


   

{5-hydroxy-2-oxo-7-oxabicyclo[4.1.0]hept-3-en-3-yl}methyl acetate

{5-hydroxy-2-oxo-7-oxabicyclo[4.1.0]hept-3-en-3-yl}methyl acetate

C9H10O5 (198.0528)


   

(2s,7r)-4,10-diacetyl-11-hydroxy-7,13-dimethoxy-2,12-dimethyl-8-oxatricyclo[7.4.0.0²,⁷]trideca-1(9),10,12-triene-3,5-dione

(2s,7r)-4,10-diacetyl-11-hydroxy-7,13-dimethoxy-2,12-dimethyl-8-oxatricyclo[7.4.0.0²,⁷]trideca-1(9),10,12-triene-3,5-dione

C20H22O8 (390.1315)


   

2-(2-hydroxy-5-methoxyphenoxy)prop-2-enoic acid

2-(2-hydroxy-5-methoxyphenoxy)prop-2-enoic acid

C10H10O5 (210.0528)


   

2-{2,6-dihydroxy-7,7a-dimethyl-2h,6h,7h,7bh-naphtho[1,2-b]oxiren-1a-yl}prop-2-en-1-yl acetate

2-{2,6-dihydroxy-7,7a-dimethyl-2h,6h,7h,7bh-naphtho[1,2-b]oxiren-1a-yl}prop-2-en-1-yl acetate

C17H22O5 (306.1467)


   

7,11,14,15-tetramethyl-3,6-dioxatetracyclo[12.4.0.0⁴,¹⁸.0⁵,⁷]octadeca-10,17-diene-4,17-diol

7,11,14,15-tetramethyl-3,6-dioxatetracyclo[12.4.0.0⁴,¹⁸.0⁵,⁷]octadeca-10,17-diene-4,17-diol

C20H30O4 (334.2144)


   

(2r)-2-hydroxy-2,4-dimethyl-5-[(1e)-prop-1-en-1-yl]furan-3-one

(2r)-2-hydroxy-2,4-dimethyl-5-[(1e)-prop-1-en-1-yl]furan-3-one

C9H12O3 (168.0786)


   

(1r,3r,4s,7e,11s,12s,13s)-3,4,7,11-tetramethyl-14,18-dioxatetracyclo[9.6.1.0⁴,¹⁶.0¹³,¹⁷]octadeca-7,16-diene-12,13-diol

(1r,3r,4s,7e,11s,12s,13s)-3,4,7,11-tetramethyl-14,18-dioxatetracyclo[9.6.1.0⁴,¹⁶.0¹³,¹⁷]octadeca-7,16-diene-12,13-diol

C20H30O4 (334.2144)


   

(1'r,2r,3's,4's,5r,7'r,10'r)-4'-(acetyloxy)-10'-(hydroxymethyl)-4,4,5,15'-tetramethyl-3,9',14'-trioxo-11',12',13'-trithia-8',15'-diazaspiro[oxolane-2,5'-tetracyclo[8.3.2.0¹,⁸.0³,⁷]pentadecan]-3'-yl acetate

(1'r,2r,3's,4's,5r,7'r,10'r)-4'-(acetyloxy)-10'-(hydroxymethyl)-4,4,5,15'-tetramethyl-3,9',14'-trioxo-11',12',13'-trithia-8',15'-diazaspiro[oxolane-2,5'-tetracyclo[8.3.2.0¹,⁸.0³,⁷]pentadecan]-3'-yl acetate

C22H28N2O9S3 (560.0957)


   

7-ethenyl-4b,10-dihydroxy-1,1,4a,7-tetramethyl-3,4,5,6-tetrahydro-2h-phenanthren-9-one

7-ethenyl-4b,10-dihydroxy-1,1,4a,7-tetramethyl-3,4,5,6-tetrahydro-2h-phenanthren-9-one

C20H28O3 (316.2038)


   

5,13-dihydroxy-8,16-dimethyl-1,9-dioxacyclohexadecane-2,10-dione

5,13-dihydroxy-8,16-dimethyl-1,9-dioxacyclohexadecane-2,10-dione

C16H28O6 (316.1886)


   

16-hydroxy-5,9,12,13,16-pentamethyl-4-oxatricyclo[10.3.1.0³,⁵]hexadeca-1(15),8-dien-2-one

16-hydroxy-5,9,12,13,16-pentamethyl-4-oxatricyclo[10.3.1.0³,⁵]hexadeca-1(15),8-dien-2-one

C20H30O3 (318.2195)


   

(1r,5r)-5-hydroxy-4-methoxy-1,5-dimethyl-2,6-dioxocyclohex-3-en-1-yl (2r)-2-methylbutanoate

(1r,5r)-5-hydroxy-4-methoxy-1,5-dimethyl-2,6-dioxocyclohex-3-en-1-yl (2r)-2-methylbutanoate

C14H20O6 (284.126)


   

(2s,5s)-2-[(r)-hydroxy(4-hydroxyphenyl)methyl]-5-isopropyl-3,5-dimethoxypyrazine-2,6-diol

(2s,5s)-2-[(r)-hydroxy(4-hydroxyphenyl)methyl]-5-isopropyl-3,5-dimethoxypyrazine-2,6-diol

C16H22N2O6 (338.1478)


   

4-acetyl-2,7-dihydroxy-2,4,5,7-tetramethyl-3-(sec-butyl)-hexahydronaphthalen-1-one

4-acetyl-2,7-dihydroxy-2,4,5,7-tetramethyl-3-(sec-butyl)-hexahydronaphthalen-1-one

C20H34O4 (338.2457)


   

(5s,7s,10as,13s,13as,14s,16as)-5,16-dihydroxy-7-(hydroxymethyl)-9,12,13-trimethyl-14-(2-methylpropyl)-5h,6h,7h,8h,10ah,13h,13ah,14h-oxacyclododeca[3,2-d]isoindol-2-one

(5s,7s,10as,13s,13as,14s,16as)-5,16-dihydroxy-7-(hydroxymethyl)-9,12,13-trimethyl-14-(2-methylpropyl)-5h,6h,7h,8h,10ah,13h,13ah,14h-oxacyclododeca[3,2-d]isoindol-2-one

C25H37NO5 (431.2672)


   

1-(5-benzyl-4,6-dihydroxy-3-methylidenehexyl)-6-[(4,6-dimethyloct-2-enoyl)oxy]-4,7-dihydroxy-2,8-dioxabicyclo[3.2.1]octane-3,4,5-tricarboxylic acid

1-(5-benzyl-4,6-dihydroxy-3-methylidenehexyl)-6-[(4,6-dimethyloct-2-enoyl)oxy]-4,7-dihydroxy-2,8-dioxabicyclo[3.2.1]octane-3,4,5-tricarboxylic acid

C33H44O14 (664.2731)


   

(1ar,2s,7r,7ar)-7,7a-dihydro-1ah-2',4'-dioxaspiro[naphtho[2,3-b]oxirene-2,3'-tricyclo[7.3.1.0⁵,¹³]tridecane]-1'(13'),5',7',9',11'-pentaene-3,6,7,10'-tetrol

(1ar,2s,7r,7ar)-7,7a-dihydro-1ah-2',4'-dioxaspiro[naphtho[2,3-b]oxirene-2,3'-tricyclo[7.3.1.0⁵,¹³]tridecane]-1'(13'),5',7',9',11'-pentaene-3,6,7,10'-tetrol

C20H14O7 (366.0739)


   

(13r)-13-hydroxypentadeca-6,7-dien-9,11-diynoic acid

(13r)-13-hydroxypentadeca-6,7-dien-9,11-diynoic acid

C15H18O3 (246.1256)


   

(1s,3s,4s,5r,6r,7r)-1-[(3e)-3,5-dimethyl-6-phenylhex-3-en-1-yl]-4,6,7-trihydroxy-2,8-dioxabicyclo[3.2.1]octane-3,4,5-tricarboxylic acid

(1s,3s,4s,5r,6r,7r)-1-[(3e)-3,5-dimethyl-6-phenylhex-3-en-1-yl]-4,6,7-trihydroxy-2,8-dioxabicyclo[3.2.1]octane-3,4,5-tricarboxylic acid

C23H28O11 (480.1632)


   

3-methyl-2-(methylamino)-n-[6,12,18-trihydroxy-14-(hydroxymethyl)-2,17-diisopropyl-10,16,20,22,26-pentamethyl-5,11,23-tris(2-methylpropyl)-3,9,15,21,24,28-hexaoxo-8-(sec-butyl)-1,4,25-trioxa-7,10,13,16,19,22-hexaazacyclooctacosa-6,12,18-trien-27-yl]pentanimidic acid

3-methyl-2-(methylamino)-n-[6,12,18-trihydroxy-14-(hydroxymethyl)-2,17-diisopropyl-10,16,20,22,26-pentamethyl-5,11,23-tris(2-methylpropyl)-3,9,15,21,24,28-hexaoxo-8-(sec-butyl)-1,4,25-trioxa-7,10,13,16,19,22-hexaazacyclooctacosa-6,12,18-trien-27-yl]pentanimidic acid

C54H96N8O14 (1080.7046)


   

6-[(4e,6e,12e,14e)-3,9-dihydroxy-6,8,10,14,16,18-hexamethylicosa-4,6,12,14-tetraen-2-yl]-3-[3,4-dihydroxy-6-(hydroxymethyl)oxan-2-yl]-4-hydroxypyran-2-one

6-[(4e,6e,12e,14e)-3,9-dihydroxy-6,8,10,14,16,18-hexamethylicosa-4,6,12,14-tetraen-2-yl]-3-[3,4-dihydroxy-6-(hydroxymethyl)oxan-2-yl]-4-hydroxypyran-2-one

C37H58O9 (646.4081)


   

(1'r,2s,3's,4's,5r,7'r,10'r)-3'-hydroxy-10'-(hydroxymethyl)-4,4,5,14'-tetramethyl-3,9',13'-trioxo-11',12'-dithia-8',14'-diazaspiro[oxolane-2,5'-tetracyclo[8.2.2.0¹,⁸.0³,⁷]tetradecan]-4'-yl acetate

(1'r,2s,3's,4's,5r,7'r,10'r)-3'-hydroxy-10'-(hydroxymethyl)-4,4,5,14'-tetramethyl-3,9',13'-trioxo-11',12'-dithia-8',14'-diazaspiro[oxolane-2,5'-tetracyclo[8.2.2.0¹,⁸.0³,⁷]tetradecan]-4'-yl acetate

C20H26N2O8S2 (486.1131)


   

(1s,3r,5s,6s,15r,18e,21s,23s)-5,10-dihydroxy-6,12,17,17,21,27-hexamethyl-7,22,24,28-tetraoxahexacyclo[21.4.3.0¹,²³.0³,²¹.0⁶,¹⁵.0⁸,¹³]triaconta-8,10,12,18,26-pentaene-25,29-dione

(1s,3r,5s,6s,15r,18e,21s,23s)-5,10-dihydroxy-6,12,17,17,21,27-hexamethyl-7,22,24,28-tetraoxahexacyclo[21.4.3.0¹,²³.0³,²¹.0⁶,¹⁵.0⁸,¹³]triaconta-8,10,12,18,26-pentaene-25,29-dione

C32H40O8 (552.2723)


   

(3s,5r,8z,12s,13s,14s,16r)-14,16-dihydroxy-5,9,12,13,16-pentamethyl-4-oxatricyclo[10.3.1.0³,⁵]hexadeca-1(15),8-dien-2-one

(3s,5r,8z,12s,13s,14s,16r)-14,16-dihydroxy-5,9,12,13,16-pentamethyl-4-oxatricyclo[10.3.1.0³,⁵]hexadeca-1(15),8-dien-2-one

C20H30O4 (334.2144)


   

(1s,4'r)-4',5-dihydroxy-2,3-dihydrospiro[naphthalene-1,2'-oxolane]-4,5'-dione

(1s,4'r)-4',5-dihydroxy-2,3-dihydrospiro[naphthalene-1,2'-oxolane]-4,5'-dione

C13H12O5 (248.0685)


   

(3s,6e,9s,12r,15s)-3-benzyl-6-ethylidene-8,11,14-trihydroxy-9-isopropyl-12,15-bis(2-methylpropyl)-1,4-dioxa-7,10,13-triazacyclopentadeca-7,10,13-triene-2,5-dione

(3s,6e,9s,12r,15s)-3-benzyl-6-ethylidene-8,11,14-trihydroxy-9-isopropyl-12,15-bis(2-methylpropyl)-1,4-dioxa-7,10,13-triazacyclopentadeca-7,10,13-triene-2,5-dione

C30H43N3O7 (557.3101)


   

(1s,5r,6r)-5,6-dihydroxy-3-(hydroxymethyl)-2-oxocyclohex-3-en-1-yl 3-chloro-2-hydroxybenzoate

(1s,5r,6r)-5,6-dihydroxy-3-(hydroxymethyl)-2-oxocyclohex-3-en-1-yl 3-chloro-2-hydroxybenzoate

C14H13ClO7 (328.035)


   

1,6-dihydroxy-10a-(methylsulfanyl)-3-(phenylmethylidene)-5ah,6h,10h-pyrazino[1,2-a]indol-4-one

1,6-dihydroxy-10a-(methylsulfanyl)-3-(phenylmethylidene)-5ah,6h,10h-pyrazino[1,2-a]indol-4-one

C19H18N2O3S (354.1038)


   

11-hydroxy-3-methyl-6-(6-methyl-5-oxohept-6-en-2-yl)-2-oxatricyclo[7.4.0.0³,⁷]trideca-1(9),5-dien-10-one

11-hydroxy-3-methyl-6-(6-methyl-5-oxohept-6-en-2-yl)-2-oxatricyclo[7.4.0.0³,⁷]trideca-1(9),5-dien-10-one

C21H28O4 (344.1987)


   

2-(4-hydroxybenzoyl)-5-isopropyl-3,5-dimethoxypyrazine-2,6-diol

2-(4-hydroxybenzoyl)-5-isopropyl-3,5-dimethoxypyrazine-2,6-diol

C16H20N2O6 (336.1321)


   

2-hydroxy-3-methyl-6-[(2s,4s)-4-methyl-3-oxohexan-2-yl]pyran-4-one

2-hydroxy-3-methyl-6-[(2s,4s)-4-methyl-3-oxohexan-2-yl]pyran-4-one

C13H18O4 (238.1205)


   

11-(5-{[(3-carboxy-1-hydroxy-3-methylpropylidene)amino]carbonyl}-4-oxopyran-2-yl)undeca-8,10-dienoic acid

11-(5-{[(3-carboxy-1-hydroxy-3-methylpropylidene)amino]carbonyl}-4-oxopyran-2-yl)undeca-8,10-dienoic acid

C22H27NO8 (433.1737)


   

(5s,8r,13s,16r)-5,13-dihydroxy-8,16-dimethyl-1,9-dioxacyclohexadecane-2,10-dione

(5s,8r,13s,16r)-5,13-dihydroxy-8,16-dimethyl-1,9-dioxacyclohexadecane-2,10-dione

C16H28O6 (316.1886)


   

3-[2-(but-2-en-2-yl)-3,6,8-trimethyl-1,2,4a,5,6,7,8,8a-octahydronaphthalene-1-carbonyl]-5-methoxy-5-methylpyrrol-2-ol

3-[2-(but-2-en-2-yl)-3,6,8-trimethyl-1,2,4a,5,6,7,8,8a-octahydronaphthalene-1-carbonyl]-5-methoxy-5-methylpyrrol-2-ol

C24H35NO3 (385.2617)


   

6-[(4,6-dimethyloct-2-enoyl)oxy]-4,7-dihydroxy-1-(3-{[(1-hydroxyethylidene)amino]methyl}-5-methyl-6-phenylhex-3-en-1-yl)-2,8-dioxabicyclo[3.2.1]octane-3,4,5-tricarboxylic acid

6-[(4,6-dimethyloct-2-enoyl)oxy]-4,7-dihydroxy-1-(3-{[(1-hydroxyethylidene)amino]methyl}-5-methyl-6-phenylhex-3-en-1-yl)-2,8-dioxabicyclo[3.2.1]octane-3,4,5-tricarboxylic acid

C35H47NO13 (689.3047)


   

1-[7,8-dihydroxy-5-(hydroxymethyl)-6-methyl-2-oxochromen-3-yl]-2-methylbutane-1,3-dione

1-[7,8-dihydroxy-5-(hydroxymethyl)-6-methyl-2-oxochromen-3-yl]-2-methylbutane-1,3-dione

C16H16O7 (320.0896)


   

4,6,7-trihydroxy-1-[4-hydroxy-3-(2-methyl-3-phenylpropylidene)butyl]-2,8-dioxabicyclo[3.2.1]octane-3,4,5-tricarboxylic acid

4,6,7-trihydroxy-1-[4-hydroxy-3-(2-methyl-3-phenylpropylidene)butyl]-2,8-dioxabicyclo[3.2.1]octane-3,4,5-tricarboxylic acid

C23H28O12 (496.1581)


   

2,3-dihydroxypropyl (9z)-10-methyloctadec-9-enoate

2,3-dihydroxypropyl (9z)-10-methyloctadec-9-enoate

C22H42O4 (370.3083)


   

3,6-dibenzyl-3,6-dihydropyrazine-2,5-diol

3,6-dibenzyl-3,6-dihydropyrazine-2,5-diol

C18H18N2O2 (294.1368)


   

(1s,4r,5s,6s,7r,9s,11s,14r,15s,18s,22s)-5,6,22-trihydroxy-19,20,23-trithia-3,13-diazaheptacyclo[13.5.1.1⁷,¹¹.1¹⁴,¹⁸.0¹,¹³.0³,¹¹.0⁴,⁹]tricosane-2,8,12,16-tetrone

(1s,4r,5s,6s,7r,9s,11s,14r,15s,18s,22s)-5,6,22-trihydroxy-19,20,23-trithia-3,13-diazaheptacyclo[13.5.1.1⁷,¹¹.1¹⁴,¹⁸.0¹,¹³.0³,¹¹.0⁴,⁹]tricosane-2,8,12,16-tetrone

C18H18N2O7S3 (470.0276)


   

1-(3,5-dimethyl-6-phenylhex-3-en-1-yl)-4,6,7-trihydroxy-2,8-dioxabicyclo[3.2.1]octane-3,4,5-tricarboxylic acid

1-(3,5-dimethyl-6-phenylhex-3-en-1-yl)-4,6,7-trihydroxy-2,8-dioxabicyclo[3.2.1]octane-3,4,5-tricarboxylic acid

C23H28O11 (480.1632)