Actinex (BioDeep_00000866934)

Main id: BioDeep_00000003596

 

PANOMIX_OTCML-2023


代谢物信息卡片


4-[(2S,3R)-4-(3,4-dihydroxyphenyl)-2,3-dimethyl-butyl]benzene-1,2-diol

化学式: C18H22O4 (302.1518)
中文名称: 马索罗酚
谱图信息: 最多检出来源 () 0%

分子结构信息

SMILES: CC(CC1=CC(=C(C=C1)O)O)C(C)CC2=CC(=C(C=C2)O)O
InChI: InChI=1S/C18H22O4/c1-11(7-13-3-5-15(19)17(21)9-13)12(2)8-14-4-6-16(20)18(22)10-14/h3-6,9-12,19-22H,7-8H2,1-2H3/t11-,12+

描述信息

D018501 - Antirheumatic Agents > D000894 - Anti-Inflammatory Agents, Non-Steroidal > D016861 - Cyclooxygenase Inhibitors
D018373 - Peripheral Nervous System Agents > D018689 - Sensory System Agents
L - Antineoplastic and immunomodulating agents > L01 - Antineoplastic agents
D004791 - Enzyme Inhibitors > D016859 - Lipoxygenase Inhibitors
D002491 - Central Nervous System Agents > D000700 - Analgesics
C471 - Enzyme Inhibitor > C1322 - Lipooxygenase Inhibitor
D020011 - Protective Agents > D000975 - Antioxidants
C26170 - Protective Agent > C275 - Antioxidant
D000893 - Anti-Inflammatory Agents
Masoprocol (meso-Nordihydroguaiaretic acid) is a potent and orally active lipoxygenase inhibitor. Masoprocol shows antihyperglycemic activity. Masoprocol decreases the glucose concentration and hepatic triglyceride in vivo. Masoprocol has the potential for the research of type II diabetes[1][2][3].
Masoprocol (meso-Nordihydroguaiaretic acid) is a potent and orally active lipoxygenase inhibitor. Masoprocol shows antihyperglycemic activity. Masoprocol decreases the glucose concentration and hepatic triglyceride in vivo. Masoprocol has the potential for the research of type II diabetes[1][2][3].
Masoprocol (meso-Nordihydroguaiaretic acid) is a potent and orally active lipoxygenase inhibitor. Masoprocol shows antihyperglycemic activity. Masoprocol decreases the glucose concentration and hepatic triglyceride in vivo. Masoprocol has the potential for the research of type II diabetes[1][2][3].

同义名列表

36 个代谢物同义名

4-[(2S,3R)-4-(3,4-dihydroxyphenyl)-2,3-dimethyl-butyl]benzene-1,2-diol; 4-[(2S,3R)-4-(3,4-dihydroxyphenyl)-2,3-dimethylbutyl]benzene-1,2-diol; 4-[(2S,3R)-4-(3,4-dihydroxyphenyl)-2,3-dimethyl-butyl]pyrocatechol; 1,2-Benzenediol, 4,4-(2,3-dimethyl-1,4-butanediyl)bis-, (R*,S*)-; (R*,S*)-4,4-(2,3-Dimethylbutane-1,4-diyl)bispyrocatechol; meso-4,4-(2,3-Dimethyltetramethylene)dipyrocatechol; Nordihydroguaiaretic acid (meso-form); meso-Nordihydroguaiaretic acid; Nordihyolroguaiaretic acid; Nordihydroguaiaretic Acid; Masoprocolum [INN-Latin]; Masoprocol [USAN:INN]; 27686-84-6 (MESO); Masoprocol (USAN); EINECS 248-606-6; NCGC00015741-02; NCGC00015741-01; Lopac0_000877; ZINC00056473; Lopac-N-5023; ZINC00012342; Actinex (TN); 334707-72-1; AIDS-025463; 27686-84-6; Masoprocol; AIDS025463; EU-0100877; meso-NDGA; 500-38-9; TNP00263; CHX-100; CHX 100; Actinex; C10719; D04862



数据库引用编号

8 个数据库交叉引用编号

分类词条

相关代谢途径

Reactome(0)

BioCyc(0)

PlantCyc(0)

代谢反应

0 个相关的代谢反应过程信息。

Reactome(0)

BioCyc(0)

WikiPathways(0)

Plant Reactome(0)

INOH(0)

PlantCyc(0)

COVID-19 Disease Map(0)

PathBank(0)

PharmGKB(0)

在这里通过桑基图来展示出与当前的这个代谢物在我们的BioDeep知识库中具有相关联信息的其他代谢物。在这里进行关联的信息来源主要有:

  • PubMed: 来源于PubMed文献库中的文献信息,我们通过自然语言数据挖掘得到的在同一篇文献中被同时提及的相关代谢物列表,这个列表按照代谢物同时出现的文献数量降序排序,取前10个代谢物作为相关研究中关联性很高的代谢物集合展示在桑基图中。
  • NCBI Taxonomy: 通过文献数据挖掘,得到的代谢物物种来源信息关联。这个关联信息同样按照出现的次数降序排序,取前10个代谢物作为高关联度的代谢物集合展示在桑吉图上。
  • Chemical Taxonomy: 在物质分类上处于同一个分类集合中的其他代谢物
  • Chemical Reaction: 在化学反应过程中,存在为当前代谢物相关联的生化反应过程中的反应底物或者反应产物的关联代谢物信息。

点击图上的相关代谢物的名称,可以跳转到相关代谢物的信息页面。

亚细胞结构定位 关联基因列表
Cytoplasm 5 ALOX5, CCL5, PIK3C3, TNK1, XDH
Peripheral membrane protein 2 ALOX5, TNK1
Endoplasmic reticulum membrane 1 CD4
Cytoplasmic vesicle, autophagosome 1 PIK3C3
Nucleus 2 LMNA, PCNA
autophagosome 1 PIK3C3
cytosol 5 ALOX5, GHR, LMNA, PIK3C3, XDH
nuclear body 1 PCNA
phosphatidylinositol 3-kinase complex, class III 1 PIK3C3
centrosome 1 PCNA
nucleoplasm 3 ALOX5, LMNA, PCNA
Cell membrane 5 CD4, CD8A, CYSLTR2, GHR, IGF1R
Multi-pass membrane protein 1 CYSLTR2
cell surface 2 AMELX, GHR
glutamatergic synapse 1 PIK3C3
Golgi membrane 1 INS
neuronal cell body 2 GHR, IGF1R
Cytoplasm, cytosol 1 ALOX5
endosome 1 PIK3C3
plasma membrane 7 CD4, CD8A, CYSLTR2, GHR, IGF1R, LTB, TNK1
terminal bouton 1 GHRH
Membrane 5 GHR, IGF1R, LTB, PIK3C3, TNK1
axon 1 IGF1R
caveola 1 IGF1R
extracellular exosome 2 PCNA, RETN
extracellular space 11 ALOX5, CCL5, GHR, GHRH, IL2, IL3, IL6, INS, LTB, RETN, XDH
perinuclear region of cytoplasm 2 ALOX5, LMNA
intracellular membrane-bounded organelle 1 IGF1R
Single-pass type I membrane protein 4 CD4, CD8A, GHR, IGF1R
Secreted 7 CCL5, GHR, IL2, IL3, IL6, INS, RETN
extracellular region 11 ALOX5, AMELX, CCL5, CD8A, GHR, GHRH, IL2, IL3, IL6, INS, RETN
[Isoform 2]: Secreted 1 CD8A
Nucleus membrane 1 ALOX5
nuclear membrane 2 ALOX5, LMNA
external side of plasma membrane 3 CD4, CD8A, GHR
Secreted, extracellular space, extracellular matrix 1 AMELX
T-tubule 1 IGF1R
perikaryon 1 GHRH
midbody 1 PIK3C3
Early endosome 1 CD4
Single-pass type II membrane protein 1 LTB
Cytoplasm, perinuclear region 1 ALOX5
Membrane raft 1 CD4
GABA-ergic synapse 1 PIK3C3
Peroxisome 2 PIK3C3, XDH
sarcoplasmic reticulum 1 XDH
collagen-containing extracellular matrix 1 AMELX
intermediate filament 1 LMNA
axoneme 1 PIK3C3
nuclear speck 1 LMNA
Late endosome 1 PIK3C3
receptor complex 3 CD8A, GHR, IGF1R
chromatin 1 PCNA
phagocytic vesicle membrane 1 PIK3C3
cytoplasmic ribonucleoprotein granule 1 GHR
nuclear replication fork 1 PCNA
chromosome, telomeric region 1 PCNA
[Isoform 2]: Cell membrane 1 GHR
site of double-strand break 1 LMNA
nuclear envelope 2 ALOX5, LMNA
Nucleus envelope 2 ALOX5, LMNA
endosome lumen 1 INS
phagophore assembly site 1 PIK3C3
phosphatidylinositol 3-kinase complex, class III, type I 1 PIK3C3
phosphatidylinositol 3-kinase complex, class III, type II 1 PIK3C3
Nucleus, nucleoplasm 1 LMNA
replication fork 1 PCNA
plasma membrane raft 1 CD8A
ficolin-1-rich granule lumen 1 ALOX5
secretory granule lumen 2 ALOX5, INS
Golgi lumen 1 INS
endoplasmic reticulum lumen 4 AMELX, CD4, IL6, INS
nuclear matrix 2 ALOX5, LMNA
male germ cell nucleus 1 PCNA
specific granule lumen 1 RETN
endocytic vesicle 1 AMELX
transport vesicle 1 INS
azurophil granule lumen 1 RETN
Endoplasmic reticulum-Golgi intermediate compartment membrane 1 INS
presynaptic endosome 1 PIK3C3
Nucleus matrix 2 ALOX5, LMNA
nuclear envelope lumen 1 ALOX5
nuclear lamina 2 LMNA, PCNA
clathrin-coated endocytic vesicle membrane 1 CD4
[Isoform 1]: Cell membrane 1 CD8A
cyclin-dependent protein kinase holoenzyme complex 1 PCNA
postsynaptic endosome 1 PIK3C3
growth hormone receptor complex 1 GHR
T cell receptor complex 2 CD4, CD8A
Nucleus lamina 1 LMNA
[Isoform C]: Nucleus speckle 1 LMNA
lamin filament 1 LMNA
Autolysosome 1 PIK3C3
alphav-beta3 integrin-IGF-1-IGF1R complex 1 IGF1R
interleukin-6 receptor complex 1 IL6
insulin receptor complex 1 IGF1R
protein kinase complex 1 IGF1R
Nucleus intermembrane space 1 ALOX5
[Growth hormone-binding protein]: Secreted 1 GHR
PCNA complex 1 PCNA
PCNA-p21 complex 1 PCNA
replisome 1 PCNA


文献列表

  • Stephen A Banse, Christine A Sedore, Erik Johnson, Anna L Coleman-Hulbert, Brian Onken, David Hall, E Grace Jackson, Phu Huynh, Anna C Foulger, Suzhen Guo, Theo Garrett, Jian Xue, Delaney Inman, Mackenzie L Morshead, W Todd Plummer, Esteban Chen, Dipa Bhaumik, Michelle K Chen, Girish Harinath, Manish Chamoli, Rose P Quinn, Ron Falkowski, Daniel Edgar, Madeline O Schmidt, Mark Lucanic, Max Guo, Monica Driscoll, Gordon J Lithgow, Patrick C Phillips. Antioxidants green tea extract and nordihydroguaiaretic acid confer species and strain-specific lifespan and health effects in Caenorhabditis nematodes. GeroScience. 2024 Apr; 46(2):2239-2251. doi: 10.1007/s11357-023-00978-0. [PMID: 37923874]
  • Qiong Wu, Yanan He, Chunxiao Cui, Xiaoya Tao, Dongdong Zhang, Yurong Zhang, Tiejin Ying, Li Li. Quantitative proteomic analysis of tomato fruit ripening behavior in response to exogenous abscisic acid. Journal of the science of food and agriculture. 2023 Dec; 103(15):7469-7483. doi: 10.1002/jsfa.12838. [PMID: 37421609]
  • Joshua A Visser, Deborah Yager, Schuyler A Chambers, Ji Youn Lim, Xujun Cao, Lynette Cegelski. Nordihydroguaiaretic Acid (NDGA) Inhibits CsgA Polymerization, Bacterial Amyloid Biogenesis, and Biofilm Formation. Chembiochem : a European journal of chemical biology. 2023 May; ?(?):e202300266. doi: 10.1002/cbic.202300266. [PMID: 37195016]
  • Narasimham L Parinandi, Alex Liaugminas, Patrick J Oliver, Saradhadevi Varadharaj, Anita Yenigalla, Austin C Elliott, Sukruthi Arutla, Steven J Campbell, Sainath R Kotha, Shariq I Sherwani, Vijay K Kutala, Jodi C McDaniel, Krishna Rao Maddipati, Periannan Kuppusamy, Thomas J Hund. Classic Phytochemical Antioxidant and Lipoxygenase Inhibitor, Nordihydroguaiaretic Acid, Activates Phospholipase D through Oxidant Signaling and Tyrosine Phosphorylation Leading to Cytotoxicity in Lung Vascular Endothelial Cells. Cell biochemistry and biophysics. 2023 Feb; ?(?):. doi: 10.1007/s12013-023-01128-1. [PMID: 36820994]
  • Florencia Martinez, Lucia Maria Ghietto, Giuliana Lingua, M Laura Mugas, J Javier Aguilar, Pedro Gil, M Belén Pisano, Juliana Marioni, María Gabriela Paglini, Marta S Contigiani, Susana C Núñez-Montoya, Brenda S Konigheim. New insights into the antiviral activity of nordihydroguaiaretic acid: Inhibition of dengue virus serotype 1 replication. Phytomedicine : international journal of phytotherapy and phytopharmacology. 2022 Nov; 106(?):154424. doi: 10.1016/j.phymed.2022.154424. [PMID: 36126544]
  • Tamara Sipka, Seol Ah Park, Resul Ozbilgic, Laurence Balas, Thierry Durand, Karol Mikula, Georges Lutfalla, Mai Nguyen-Chi. Macrophages undergo a behavioural switch during wound healing in zebrafish. Free radical biology & medicine. 2022 11; 192(?):200-212. doi: 10.1016/j.freeradbiomed.2022.09.021. [PMID: 36162743]
  • Nor Azrini Nadiha Azmi, Amal A M Elgharbawy, Hamzah Mohd Salleh, Muhammad Moniruzzaman. Preparation, Characterization and Biological Activities of an Oil-in-Water Nanoemulsion from Fish By-Products and Lemon Oil by Ultrasonication Method. Molecules (Basel, Switzerland). 2022 Oct; 27(19):. doi: 10.3390/molecules27196725. [PMID: 36235261]
  • Ignacio Peralta, Carla Marrassini, Malen Saint Martin, Yanina Santander Plantamura, Laura Cogoi, Néstor Pellegrino, María Rosario Alonso, Claudia Anesini. Anti-hyperglycaemic effect and nutritional properties of an aqueous extract of Larrea divaricata Cav. (jarilla) in streptozotocin-induced diabetes in mice. Journal of ethnopharmacology. 2022 Oct; 296(?):115429. doi: 10.1016/j.jep.2022.115429. [PMID: 35659916]
  • Felicia S Manciu, Jose Guerrero, Kevin E Bennet, Su-Youne Chang, Masum Rahman, Lizbeth V Martinez Lopez, Siobhan Chantigian, Mariana Castellanos, Marian Manciu. Assessing Nordihydroguaiaretic Acid Therapeutic Effect for Glioblastoma Multiforme. Sensors (Basel, Switzerland). 2022 Mar; 22(7):. doi: 10.3390/s22072643. [PMID: 35408257]
  • Nicole M Anders, Carlos G Romo, Avelina Hemingway, Manmeet S Ahluwalia, Michelle A Rudek. Quantitation of terameprocol in human plasma by liquid chromatography-tandem mass spectrometry. Journal of pharmaceutical and biomedical analysis. 2022 Feb; 209(?):114525. doi: 10.1016/j.jpba.2021.114525. [PMID: 34906921]
  • Leyla Polat Kose, İlhami Gulcin. Evaluation of the Antioxidant and Antiradical Properties of Some Phyto and Mammalian Lignans. Molecules (Basel, Switzerland). 2021 Nov; 26(23):. doi: 10.3390/molecules26237099. [PMID: 34885681]
  • Maria N de Lira, Lukas Bolini, Natália R T Amorim, Hercules A Silva-Souza, Bruno L Diaz, Claudio Canetti, Pedro M Persechini, Christianne Bandeira-Melo. Acute catabolism of leukocyte lipid bodies: Characterization of a nordihydroguaiaretic acid (NDGA)-induced proteasomal-dependent model. Prostaglandins, leukotrienes, and essential fatty acids. 2021 08; 171(?):102320. doi: 10.1016/j.plefa.2021.102320. [PMID: 34303171]
  • Florencia Martinez, María Laura Mugas, Juan Javier Aguilar, Juliana Marioni, Marta Silvia Contigiani, Susana C Núñez Montoya, Brenda S Konigheim. First report of antiviral activity of nordihydroguaiaretic acid against Fort Sherman virus (Orthobunyavirus). Antiviral research. 2021 03; 187(?):104976. doi: 10.1016/j.antiviral.2020.104976. [PMID: 33444704]
  • Kumar Lama, Guy Harlev, Hadas Shafran, Reut Peer, Moshe A Flaishman. Anthocyanin accumulation is initiated by abscisic acid to enhance fruit color during fig (Ficus carica L.) ripening. Journal of plant physiology. 2020 Aug; 251(?):153192. doi: 10.1016/j.jplph.2020.153192. [PMID: 32554070]
  • Nathaniel C Gilbert, Jana Gerstmeier, Erin E Schexnaydre, Friedemann Börner, Ulrike Garscha, David B Neau, Oliver Werz, Marcia E Newcomer. Structural and mechanistic insights into 5-lipoxygenase inhibition by natural products. Nature chemical biology. 2020 07; 16(7):783-790. doi: 10.1038/s41589-020-0544-7. [PMID: 32393899]
  • Geraldine Sandana Mala John, Veena Kumari Vuttaradhi, Satoru Takeuchi, Ravi Shankar Pitani, Ganesh Venkatraman, Suresh Kumar Rayala. Facile synthesis and nanoscale features of a nanostructured nordihydroguaiaretic acid analog for therapeutic applications. Journal of nanobiotechnology. 2020 May; 18(1):74. doi: 10.1186/s12951-020-00628-z. [PMID: 32410712]
  • Qinghua Cui, Ruikun Du, Miaomiao Liu, Lijun Rong. Lignans and Their Derivatives from Plants as Antivirals. Molecules (Basel, Switzerland). 2020 Jan; 25(1):. doi: 10.3390/molecules25010183. [PMID: 31906391]
  • Michael E Zubrow, Susan S Margulies, Nadir Yehya. Nordihydroguaiaretic acid reduces secondary organ injury in septic rats after cecal ligation and puncture. PloS one. 2020; 15(8):e0237613. doi: 10.1371/journal.pone.0237613. [PMID: 32790786]
  • Geraldine Sandana Mala John, Satoru Takeuchi, Ganesh Venkatraman, Suresh Kumar Rayala. Nordihydroguaiaretic Acid in Therapeutics: Beneficial to Toxicity Profiles and the Search for its Analogs. Current cancer drug targets. 2020; 20(2):86-103. doi: 10.2174/1568009619666191022141547. [PMID: 31642411]
  • Ignacio Peralta, Carla Marrassini, María Laura Barreiro Arcos, Graciela Cremaschi, María Rosario Alonso, Claudia Anesini. Larrea divaricata Cav. aqueous extract and nordihydroguariaretic acid modulate oxidative stress in submandibular glands of diabetic rats: a buccal protective in diabetes. BMC complementary and alternative medicine. 2019 Aug; 19(1):227. doi: 10.1186/s12906-019-2636-z. [PMID: 31438933]
  • Zhong Zhang, Chenxuan Kang, Shuyi Zhang, Xingang Li. Transcript analyses reveal a comprehensive role of abscisic acid in modulating fruit ripening in Chinese jujube. BMC plant biology. 2019 May; 19(1):189. doi: 10.1186/s12870-019-1802-2. [PMID: 31068143]
  • Gustavo Tomás Díaz-Gerevini, Alejandro Daín, María Eugenia Pasqualini, Cristina B López, Aldo R Eynard, Gastón Repossi. Diabetic encephalopathy: beneficial effects of supplementation with fatty acids ω3 and nordihydroguaiaretic acid in a spontaneous diabetes rat model. Lipids in health and disease. 2019 Feb; 18(1):43. doi: 10.1186/s12944-018-0938-7. [PMID: 30736810]
  • Saurabh Awasthi, R Preethy, N T Saraswathi. Nordihydroguaiaretic acid prevents glycation induced structural alterations and aggregation of albumin. International journal of biological macromolecules. 2019 Feb; 122(?):479-484. doi: 10.1016/j.ijbiomac.2018.10.173. [PMID: 30416092]
  • Nitin Mundhe, Parveen Kumar, Ishan Arora, Sahabuddin Ahmed, Mangala Lahkar. Differential effect of NDGA on cisplatin-induced nephrotoxicity in Spargue-Dawley rats. Immunopharmacology and immunotoxicology. 2019 Feb; 41(1):68-75. doi: 10.1080/08923973.2018.1547741. [PMID: 30604648]
  • Madhurima Singh, Stefanie Bittner, Yihang Li, Alex Bittner, Lu Han, Yuan Cortez, Mohammed Inayathullah, Zeeshan Arif, Ramakrishnan Parthasarathi, Jayakumar Rajadas, Wen-Jun Shen, Mark R Nicolls, Fredric B Kraemer, Salman Azhar. Anti-hyperlipidaemic effects of synthetic analogues of nordihydroguaiaretic acid in dyslipidaemic rats. British journal of pharmacology. 2019 02; 176(3):369-385. doi: 10.1111/bph.14528. [PMID: 30374952]
  • Kumar Lama, Sharawan Yadav, Yogev Rosianski, Felix Shaya, Amnon Lichter, Lijuan Chai, Yardena Dahan, Zohar Freiman, Reut Peer, Moshe A Flaishman. The distinct ripening processes in the reproductive and non-reproductive parts of the fig syconium are driven by ABA. Journal of experimental botany. 2019 01; 70(1):115-131. doi: 10.1093/jxb/ery333. [PMID: 30239815]
  • Jackie K W Chan, Stefanie Bittner, Alex Bittner, Suman Atwal, Wen-Jun Shen, Mohammed Inayathullah, Jayakumar Rajada, Mark R Nicolls, Fredric B Kraemer, Salman Azhar. Nordihydroguaiaretic Acid, a Lignan from Larrea tridentata (Creosote Bush), Protects Against American Lifestyle-Induced Obesity Syndrome Diet-Induced Metabolic Dysfunction in Mice. The Journal of pharmacology and experimental therapeutics. 2018 05; 365(2):281-290. doi: 10.1124/jpet.117.243733. [PMID: 29472517]
  • María Rosario Alonso, Ignacio Peralta, Demian Monti, Renzo Martino, Claudia Anesini. Stability of an Aqueous Extract of Larrea divaricata Cav. during a Simulated Digestion Process. Phytotherapy research : PTR. 2017 Nov; 31(11):1708-1714. doi: 10.1002/ptr.5897. [PMID: 28857321]
  • Lukas Probst, Jasmin Dächert, Barbara Schenk, Simone Fulda. Lipoxygenase inhibitors protect acute lymphoblastic leukemia cells from ferroptotic cell death. Biochemical pharmacology. 2017 09; 140(?):41-52. doi: 10.1016/j.bcp.2017.06.112. [PMID: 28595877]
  • Teresa Merino-Ramos, Nereida Jiménez de Oya, Juan-Carlos Saiz, Miguel A Martín-Acebes. Antiviral Activity of Nordihydroguaiaretic Acid and Its Derivative Tetra-O-Methyl Nordihydroguaiaretic Acid against West Nile Virus and Zika Virus. Antimicrobial agents and chemotherapy. 2017 08; 61(8):. doi: 10.1128/aac.00376-17. [PMID: 28507114]
  • Bharat Bashyal, Linfeng Li, Trpta Bains, Anjan Debnath, Daniel V LaBarbera. Larrea tridentata: A novel source for anti-parasitic agents active against Entamoeba histolytica, Giardia lamblia and Naegleria fowleri. PLoS neglected tropical diseases. 2017 Aug; 11(8):e0005832. doi: 10.1371/journal.pntd.0005832. [PMID: 28793307]
  • Yasir Hasan Siddique, Fahad Ali. Protective effect of nordihydroguaiaretic acid (NDGA) on the transgenic Drosophila model of Alzheimer's disease. Chemico-biological interactions. 2017 May; 269(?):59-66. doi: 10.1016/j.cbi.2017.04.005. [PMID: 28392391]
  • Noora Sjöstedt, Kira Holvikari, Päivi Tammela, Heidi Kidron. Inhibition of Breast Cancer Resistance Protein and Multidrug Resistance Associated Protein 2 by Natural Compounds and Their Derivatives. Molecular pharmaceutics. 2017 01; 14(1):135-146. doi: 10.1021/acs.molpharmaceut.6b00754. [PMID: 28043125]
  • Dale R Bergren, Jimmie L Valentine. Anti-anaphylactic action of nordihydroguaiaretic acid in antigen sensitized guinea pigs. Respiratory physiology & neurobiology. 2016 12; 234(?):26-31. doi: 10.1016/j.resp.2016.09.003. [PMID: 27595978]
  • Alejandro Dain, Gaston Repossi, Gustavo T Diaz-Gerevini, Jairam Vanamala, Undurti N Das, Aldo R Eynard. Long chain polyunsaturated fatty acids (LCPUFAs) and nordihydroguaiaretic acid (NDGA) modulate metabolic and inflammatory markers in a spontaneous type 2 diabetes mellitus model (Stillman Salgado rats). Lipids in health and disease. 2016 Nov; 15(1):205. doi: 10.1186/s12944-016-0363-8. [PMID: 27884155]
  • Emilia Wilmowicz, Kamil Frankowski, Agata Kućko, Michał Świdziński, Juan de Dios Alché, Anna Nowakowska, Jan Kopcewicz. The influence of abscisic acid on the ethylene biosynthesis pathway in the functioning of the flower abscission zone in Lupinus luteus. Journal of plant physiology. 2016 Nov; 206(?):49-58. doi: 10.1016/j.jplph.2016.08.018. [PMID: 27689739]
  • Xing Hua, Jun Ding, Rui Li, Ying Zhang, Zejun Huang, Yanli Guo, Qinghai Chen. Anti-tumor effect of ultrasound-induced Nordy-loaded microbubbles destruction. Journal of drug targeting. 2016 09; 24(8):703-8. doi: 10.3109/1061186x.2016.1144058. [PMID: 26811100]
  • Irena Roškar, Borut Štrukelj, Mojca Lunder. Screening of Phenolic Compounds Reveals Inhibitory Activity of Nordihydroguaiaretic Acid Against Three Enzymes Involved in the Regulation of Blood Glucose Level. Plant foods for human nutrition (Dordrecht, Netherlands). 2016 Mar; 71(1):88-9. doi: 10.1007/s11130-016-0530-0. [PMID: 26860525]
  • Yan-Hong Xu, Yong-Cui Liao, Zheng Zhang, Juan Liu, Pei-Wen Sun, Zhi-Hui Gao, Chun Sui, Jian-He Wei. Jasmonic acid is a crucial signal transducer in heat shock induced sesquiterpene formation in Aquilaria sinensis. Scientific reports. 2016 Feb; 6(?):21843. doi: 10.1038/srep21843. [PMID: 26902148]
  • Kotohiko Kimura, Ru Chih C Huang. Tetra-O-Methyl Nordihydroguaiaretic Acid Broadly Suppresses Cancer Metabolism and Synergistically Induces Strong Anticancer Activity in Combination with Etoposide, Rapamycin and UCN-01. PloS one. 2016; 11(2):e0148685. doi: 10.1371/journal.pone.0148685. [PMID: 26886430]
  • Saima Nusrat, Mohammad Khursheed Siddiqi, Masihuz Zaman, Nida Zaidi, Mohammad Rehan Ajmal, Parvez Alam, Atiyatul Qadeer, Ali Saber Abdelhameed, Rizwan Hasan Khan. A Comprehensive Spectroscopic and Computational Investigation to Probe the Interaction of Antineoplastic Drug Nordihydroguaiaretic Acid with Serum Albumins. PloS one. 2016; 11(7):e0158833. doi: 10.1371/journal.pone.0158833. [PMID: 27391941]
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