alpha-Eleostearic acid (BioDeep_00001869223)

Main id: BioDeep_00000408616

 


代谢物信息卡片


alpha-Eleostearic acid

化学式: C18H30O2 (278.2246)
中文名称:
谱图信息: 最多检出来源 () 0%

分子结构信息

SMILES: CCCCC=CC=CC=CCCCCCCCC(=O)O
InChI: InChI=1S/C18H30O2/c1-2-3-4-5-6-7-8-9-10-11-12-13-14-15-16-17-18(19)20/h5-10H,2-4,11-17H2,1H3,(H,19,20)/b6-5+,8-7+,10-9-

描述信息

同义名列表

2 个代谢物同义名

alpha-Eleostearic acid; (9Z,11E,13E)-Octadecatrienoic acid



数据库引用编号

10 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)

11 个相关的物种来源信息

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 10 BCL2, CASP3, CAT, ERBB2, MTOR, NOL3, PPARG, PTEN, SIRT1, TH
Peripheral membrane protein 2 MTOR, PNLIPRP2
Endosome membrane 1 ERBB2
Endoplasmic reticulum membrane 4 BCL2, CYP4B1, CYP4F3, MTOR
Nucleus 10 BCL2, CASP3, ERBB2, GGH, MTOR, PPARA, PPARG, PTEN, SIRT1, TH
autophagosome 1 MAP1LC3A
cytosol 12 BCL2, CASP3, CAT, ERBB2, LIPE, MAP1LC3A, MTOR, NOL3, PPARG, PTEN, SIRT1, TH
dendrite 2 MTOR, TH
phagocytic vesicle 1 MTOR
nucleoplasm 7 CASP3, ERBB2, MTOR, PPARA, PPARG, PTEN, SIRT1
RNA polymerase II transcription regulator complex 1 PPARG
Cell membrane 2 ERBB2, LIPE
Lipid-anchor 2 MAP1LC3A, NOL3
Cytoplasmic side 1 MTOR
ruffle membrane 1 ERBB2
Cell projection, axon 1 TH
Multi-pass membrane protein 1 UCP1
Golgi apparatus membrane 1 MTOR
glutamatergic synapse 2 CASP3, MAP1LC3A
Golgi membrane 1 MTOR
lysosomal membrane 1 MTOR
mitochondrial inner membrane 1 UCP1
neuromuscular junction 1 ERBB2
neuronal cell body 1 CASP3
presynaptic membrane 1 ERBB2
smooth endoplasmic reticulum 1 TH
synaptic vesicle 1 TH
Cytoplasm, cytosol 1 LIPE
Lysosome 2 GGH, MTOR
plasma membrane 2 ERBB2, PTEN
terminal bouton 1 TH
Membrane 7 BCL2, CAT, CYP4B1, ERBB2, LIPE, MTOR, NOL3
apical plasma membrane 2 ERBB2, PTEN
axon 1 TH
basolateral plasma membrane 1 ERBB2
caveola 1 LIPE
extracellular exosome 2 CAT, GGH
Lysosome membrane 1 MTOR
endoplasmic reticulum 1 BCL2
extracellular space 3 GGH, PNLIP, PNLIPRP2
perinuclear region of cytoplasm 3 ERBB2, PPARG, TH
mitochondrion 6 BCL2, CAT, NOL3, SIRT1, TH, UCP1
protein-containing complex 2 BCL2, CAT
intracellular membrane-bounded organelle 3 CAT, MAP1LC3A, PPARG
Microsome membrane 2 CYP4F3, MTOR
postsynaptic density 2 CASP3, PTEN
chromatin silencing complex 1 SIRT1
TORC1 complex 1 MTOR
TORC2 complex 1 MTOR
Single-pass type I membrane protein 1 ERBB2
Secreted 2 PNLIP, PNLIPRP2
extracellular region 6 CAT, ERBB2, GGH, PNLIP, PNLIPRP2, PTEN
cytoplasmic side of plasma membrane 2 PTEN, TH
Mitochondrion outer membrane 2 BCL2, MTOR
Single-pass membrane protein 2 BCL2, CYP4F3
mitochondrial outer membrane 2 BCL2, MTOR
mitochondrial matrix 1 CAT
Nucleus membrane 1 BCL2
Bcl-2 family protein complex 1 BCL2
nuclear membrane 1 BCL2
dendritic spine 1 PTEN
perikaryon 1 TH
cytoplasmic vesicle 2 ERBB2, TH
nucleolus 2 NOL3, SIRT1
Melanosome membrane 1 TH
sarcoplasm 1 NOL3
Early endosome 1 ERBB2
Cell projection, ruffle membrane 1 ERBB2
Cytoplasm, perinuclear region 2 ERBB2, TH
Mitochondrion inner membrane 1 UCP1
heterochromatin 1 SIRT1
pore complex 1 BCL2
Cytoplasm, cytoskeleton 1 MAP1LC3A
focal adhesion 1 CAT
microtubule 1 MAP1LC3A
Peroxisome 1 CAT
sarcoplasmic reticulum 1 NOL3
Peroxisome matrix 1 CAT
peroxisomal matrix 1 CAT
peroxisomal membrane 1 CAT
Cell projection, dendritic spine 1 PTEN
Nucleus, PML body 3 MTOR, PTEN, SIRT1
PML body 3 MTOR, PTEN, SIRT1
nuclear inner membrane 1 SIRT1
Late endosome 1 MAP1LC3A
receptor complex 2 ERBB2, PPARG
Cell projection, neuron projection 2 PNLIPRP2, PTEN
Zymogen granule membrane 1 PNLIPRP2
neuron projection 3 PNLIPRP2, PTEN, TH
chromatin 3 PPARA, PPARG, SIRT1
Cytoplasmic vesicle, autophagosome membrane 1 MAP1LC3A
autophagosome membrane 1 MAP1LC3A
cell projection 1 PTEN
Secreted, extracellular space 1 GGH
organelle membrane 1 MAP1LC3A
fibrillar center 1 SIRT1
nuclear envelope 2 MTOR, SIRT1
Endomembrane system 3 MAP1LC3A, MTOR, PNLIPRP2
Lipid droplet 1 LIPE
Membrane, caveola 1 LIPE
Melanosome 1 GGH
euchromatin 1 SIRT1
myelin sheath 2 BCL2, ERBB2
basal plasma membrane 1 ERBB2
[Isoform 3]: Cytoplasm 1 NOL3
ficolin-1-rich granule lumen 1 CAT
secretory granule lumen 1 CAT
specific granule lumen 1 GGH
tertiary granule lumen 1 GGH
Schmidt-Lanterman incisure 1 PTEN
azurophil granule lumen 1 GGH
semaphorin receptor complex 1 ERBB2
[Isoform 2]: Cytoplasm 1 NOL3
Vacuole 1 GGH
[Isoform 1]: Nucleus, nucleolus 1 NOL3
death-inducing signaling complex 1 CASP3
[Isoform 1]: Cell membrane 1 ERBB2
eNoSc complex 1 SIRT1
rDNA heterochromatin 1 SIRT1
Cytoplasmic vesicle, phagosome 1 MTOR
Autolysosome 1 MAP1LC3A
catalase complex 1 CAT
ERBB3:ERBB2 complex 1 ERBB2
Cytoplasmic vesicle, secretory vesicle, synaptic vesicle 1 TH
myelin sheath adaxonal region 1 PTEN
BAD-BCL-2 complex 1 BCL2
[Isoform alpha]: Secreted 1 PTEN
[SirtT1 75 kDa fragment]: Cytoplasm 1 SIRT1


文献列表

  • Zarrin Basharat, Zainab Murtaza, Aisha Siddiqa, Sulaiman Mohammed Alnasser, Alotaibi Meshal. Therapeutic target mapping from the genome of Kingella negevensis and biophysical inhibition assessment through PNP synthase binding with traditional medicinal compounds. Molecular diversity. 2024 Apr; 28(2):581-594. doi: 10.1007/s11030-023-10604-y. [PMID: 36645537]
  • Lingling Zhang, Pan Wu, Wenying Li, Tao Feng, Jay Shockey, Liang Chen, Lin Zhang, Shiyou Lü. Triacylglycerol biosynthesis in shaded seeds of tung tree (Vernicia fordii) is regulated in part by Homeodomain Leucine Zipper 21. The Plant journal : for cell and molecular biology. 2021 12; 108(6):1735-1753. doi: 10.1111/tpj.15540. [PMID: 34643970]
  • Alexander Beatty, Tanu Singh, Yulia Y Tyurina, Vladimir A Tyurin, Svetlana Samovich, Emmanuelle Nicolas, Kristen Maslar, Yan Zhou, Kathy Q Cai, Yinfei Tan, Sebastian Doll, Marcus Conrad, Aravind Subramanian, Hülya Bayır, Valerian E Kagan, Ulrike Rennefahrt, Jeffrey R Peterson. Ferroptotic cell death triggered by conjugated linolenic acids is mediated by ACSL1. Nature communications. 2021 04; 12(1):2244. doi: 10.1038/s41467-021-22471-y. [PMID: 33854057]
  • Debjyoti Paul, Krishnendu Manna, Aaveri Sengupta, Sayani Mukherjee, Sanjit Dey, Prasanta K Bag, Pubali Dhar. A novel nanoformulation of α-eleostearic acid restores molecular pathogenesis of hypersensitivity. Nanomedicine (London, England). 2019 03; 14(5):529-552. doi: 10.2217/nnm-2018-0450. [PMID: 30753111]
  • Anura P Jayasooriya. How to safeguard an appropriate "all trans retinoic acid" concentration to keep cell division on track: Exploring therapeutic hotspots from metabolomics. Medical hypotheses. 2018 Dec; 121(?):56. doi: 10.1016/j.mehy.2018.09.020. [PMID: 30396492]
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  • Inès Belhaj, Sawsan Amara, Goetz Parsiegla, Priscila Sutto-Ortiz, Moulay Sahaka, Hafedh Belghith, Audric Rousset, Dominique Lafont, Frédéric Carrière. Galactolipase activity of Talaromyces thermophilus lipase on galactolipid micelles, monomolecular films and UV-absorbing surface-coated substrate. Biochimica et biophysica acta. Molecular and cell biology of lipids. 2018 09; 1863(9):1006-1015. doi: 10.1016/j.bbalip.2018.05.016. [PMID: 29859246]
  • Meddy El Alaoui, Laurent Soulère, Alexandre Noiriel, Priscila Sutto-Ortiz, Lucie Grand, Florence Popowycz, Jorge Alberto Rodríguez-González, Yves Queneau, Abdelkarim Abousalham. A Continuous and Sensitive Spectrophotometric Assay for Lipase and Phospholipase A Activities Using α-Eleostearic Acid-Containing Substrates. Methods in molecular biology (Clifton, N.J.). 2018; 1835(?):119-128. doi: 10.1007/978-1-4939-8672-9_5. [PMID: 30109648]
  • Erwann Durand, André Delavault, Claire Bourlieu, Jérôme Lecomte, Bruno Baréa, Maria Cruz Figueroa Espinoza, Eric A Decker, Françoise Michel Salaun, Gilles Kergourlay, Pierre Villeneuve. Eleostearic phospholipids as probes to evaluate antioxidants efficiency against liposomes oxidation. Chemistry and physics of lipids. 2017 12; 209(?):19-28. doi: 10.1016/j.chemphyslip.2017.10.006. [PMID: 29061286]
  • Gou-Chun Chen, Wen-Hung Chen, Kuo-Tang Tseng, Pei-Min Chao. The anti-adiposity effect of bitter melon seed oil is solely attributed to its fatty acid components. Lipids in health and disease. 2017 Sep; 16(1):186. doi: 10.1186/s12944-017-0578-3. [PMID: 28962621]
  • Olga Yurchenko, Jay M Shockey, Satinder K Gidda, Maxwell I Silver, Kent D Chapman, Robert T Mullen, John M Dyer. Engineering the production of conjugated fatty acids in Arabidopsis thaliana leaves. Plant biotechnology journal. 2017 Aug; 15(8):1010-1023. doi: 10.1111/pbi.12695. [PMID: 28083898]
  • Harold K Abaidoo-Ayin, Prince G Boakye, Kerby C Jones, Victor T Wyatt, Samuel A Besong, Stephen E Lumor. Compositional Analyses and Shelf-Life Modeling of Njangsa (Ricinodendron heudelotii) Seed Oil Using the Weibull Hazard Analysis. Journal of food science. 2017 Aug; 82(8):1799-1806. doi: 10.1111/1750-3841.13767. [PMID: 28631807]
  • Ya-Yuan Chang, Hui-Min Su, Szu-Han Chen, Wen-Tsong Hsieh, Jong-Ho Chyuan, Pei-Min Chao. Roles of Peroxisome Proliferator-Activated Receptor α in Bitter Melon Seed Oil-Corrected Lipid Disorders and Conversion of α-Eleostearic Acid into Rumenic Acid in C57BL/6J Mice. Nutrients. 2016 Dec; 8(12):. doi: 10.3390/nu8120805. [PMID: 27973445]
  • Meddy El Alaoui, Laurent Soulère, Alexandre Noiriel, Florence Popowycz, Abdallah Khatib, Yves Queneau, Abdelkarim Abousalham. A continuous spectrophotometric assay that distinguishes between phospholipase A1 and A2 activities. Journal of lipid research. 2016 08; 57(8):1589-97. doi: 10.1194/jlr.d065961. [PMID: 27194811]
  • Gou-Chun Chen, Hui-Min Su, Yu-Shun Lin, Po-Yen Tsou, Jong-Ho Chyuan, Pei-Min Chao. A conjugated fatty acid present at high levels in bitter melon seed favorably affects lipid metabolism in hepatocytes by increasing NAD(+)/NADH ratio and activating PPARα, AMPK and SIRT1 signaling pathway. The Journal of nutritional biochemistry. 2016 07; 33(?):28-35. doi: 10.1016/j.jnutbio.2016.03.009. [PMID: 27260465]
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  • Meddy El Alaoui, Alexandre Noiriel, Laurent Soulère, Lucie Grand, Yves Queneau, Abdelkarim Abousalham. Development of a high-throughput assay for measuring phospholipase A activity using synthetic 1,2-α-eleostearoyl-sn-glycero-3-phosphocholine coated on microtiter plates. Analytical chemistry. 2014 Nov; 86(21):10576-83. doi: 10.1021/ac502096v. [PMID: 25266374]
  • Hassen Mohamed Sbihi, Imededdine Arbi Nehdi, Saud Ibrahim Al-Resayes. Characterization of white Mahlab (Prunus mahaleb L.) seed oil: a rich source of α-eleostearic acid. Journal of food science. 2014 May; 79(5):C795-801. doi: 10.1111/1750-3841.12467. [PMID: 24754875]
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  • Robson Simplício de Sousa, Alessandro Oliveira de Moraes Nogueira, Viviane Gobel Marques, Rosilene Maria Clementin, Vânia Rodrigues de Lima. Effects of α-eleostearic acid on asolectin liposomes dynamics: relevance to its antioxidant activity. Bioorganic chemistry. 2013 Dec; 51(?):8-15. doi: 10.1016/j.bioorg.2013.08.004. [PMID: 24076476]
  • Carole Serveau-Avesque, Robert Verger, Jorge A Rodriguez, Abdelkarim Abousalham. Development of a high-throughput assay for measuring lipase activity using natural triacylglycerols coated on microtiter plates. The Analyst. 2013 Sep; 138(18):5230-8. doi: 10.1039/c3an36699e. [PMID: 23851449]
  • Siddhartha S Saha, Mahua Ghosh. Protective effect of conjugated linolenic acid isomers present in vegetable oils against arsenite-induced renal toxicity in rat model. Nutrition (Burbank, Los Angeles County, Calif.). 2013 Jun; 29(6):903-10. doi: 10.1016/j.nut.2012.12.013. [PMID: 23422533]
  • Steven Pastor, Kandan Sethumadhavan, Abul H J Ullah, Satinder Gidda, Heping Cao, Catherine Mason, Dorselyn Chapital, Brian Scheffler, Robert Mullen, John Dyer, Jay Shockey. Molecular properties of the class III subfamily of acyl-coenyzme A binding proteins from tung tree (Vernicia fordii). Plant science : an international journal of experimental plant biology. 2013 Apr; 203-204(?):79-88. doi: 10.1016/j.plantsci.2012.12.009. [PMID: 23415331]
  • Zhongyan Sun, Han Wang, Shuhong Ye, Shan Xiao, Jing Liu, Wenwen Wang, Dandan Jiang, Xiao Liu, Jihui Wang. Beta-eleostearic acid induce apoptosis in T24 human bladder cancer cells through reactive oxygen species (ROS)-mediated pathway. Prostaglandins & other lipid mediators. 2012 Oct; 99(1-2):1-8. doi: 10.1016/j.prostaglandins.2012.04.001. [PMID: 22609276]
  • Siddhartha S Saha, Mahua Ghosh. Antioxidant and anti-inflammatory effect of conjugated linolenic acid isomers against streptozotocin-induced diabetes. The British journal of nutrition. 2012 Sep; 108(6):974-83. doi: 10.1017/s0007114511006325. [PMID: 22182422]
  • Moumita Pal, M Ghosh. Prophylactic effect of α-linolenic acid and α-eleostearic acid against MeHg induced oxidative stress, DNA damage and structural changes in RBC membrane. Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association. 2012 Aug; 50(8):2811-8. doi: 10.1016/j.fct.2012.05.038. [PMID: 22683484]
  • Pei-Hsuan Chen, Gou-Chun Chen, Mei-Fang Yang, Cheng-Hsien Hsieh, Shu-Han Chuang, Hsin-Ling Yang, Yueh-Hsiung Kuo, Jong-Ho Chyuan, Pei-Min Chao. Bitter melon seed oil-attenuated body fat accumulation in diet-induced obese mice is associated with cAMP-dependent protein kinase activation and cell death in white adipose tissue. The Journal of nutrition. 2012 Jul; 142(7):1197-204. doi: 10.3945/jn.112.159939. [PMID: 22623391]
  • Siddhartha S Saha, Anirban Chakraborty, Santinath Ghosh, Mahua Ghosh. Comparative study of hypocholesterolemic and hypolipidemic effects of conjugated linolenic acid isomers against induced biochemical perturbations and aberration in erythrocyte membrane fluidity. European journal of nutrition. 2012 Jun; 51(4):483-95. doi: 10.1007/s00394-011-0233-0. [PMID: 21814874]
  • Moumita Pal, M Ghosh. Studies on comparative efficacy of α-linolenic acid and α-eleostearic acid on prevention of organic mercury-induced oxidative stress in kidney and liver of rat. Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association. 2012 Mar; 50(3-4):1066-72. doi: 10.1016/j.fct.2011.12.042. [PMID: 22269903]
  • Siddhartha S Saha, Mahua Ghosh. Antioxidant effect of vegetable oils containing conjugated linolenic acid isomers against induced tissue lipid peroxidation and inflammation in rat model. Chemico-biological interactions. 2011 Apr; 190(2-3):109-20. doi: 10.1016/j.cbi.2011.02.030. [PMID: 21382362]
  • Takuji Tanaka, Masashi Hosokawa, Yumiko Yasui, Rikako Ishigamori, Kazuo Miyashita. Cancer chemopreventive ability of conjugated linolenic acids. International journal of molecular sciences. 2011; 12(11):7495-509. doi: 10.3390/ijms12117495. [PMID: 22174613]
  • Peizhen Yang, Xiangjun Li, Matthew J Shipp, Jay M Shockey, Edgar B Cahoon. Mining the bitter melon (momordica charantia l.) seed transcriptome by 454 analysis of non-normalized and normalized cDNA populations for conjugated fatty acid metabolism-related genes. BMC plant biology. 2010 Nov; 10(?):250. doi: 10.1186/1471-2229-10-250. [PMID: 21080948]
  • Xiao-ru Liu, Ze-yuan Deng, Ya-wei Fan, Jing Li, Zhi-han Liu. [Mineral elements analysis of Momordica charantiap seeds by ICP-AES and fatty acid profile identification of seed oil by GC-MS]. Guang pu xue yu guang pu fen xi = Guang pu. 2010 Aug; 30(8):2265-8. doi: . [PMID: 20939353]
  • S S Saha, M Ghosh. Comparative study of antioxidant activity of alpha-eleostearic acid and punicic acid against oxidative stress generated by sodium arsenite. Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association. 2009 Oct; 47(10):2551-6. doi: 10.1016/j.fct.2009.07.012. [PMID: 19619603]
  • Michael E Grossmann, Nancy K Mizuno, Michelle L Dammen, Todd Schuster, Amitabha Ray, Margot P Cleary. Eleostearic Acid inhibits breast cancer proliferation by means of an oxidation-dependent mechanism. Cancer prevention research (Philadelphia, Pa.). 2009 Oct; 2(10):879-86. doi: 10.1158/1940-6207.capr-09-0088. [PMID: 19789297]
  • Bogdan Smyk, Ryszard Amarowicz, Mariusz Szabelski, Ignacy Gryczynski, Zygmunt Gryczynski. Steady-state and time-resolved fluorescence studies of stripped Borage oil. Analytica chimica acta. 2009 Jul; 646(1-2):85-9. doi: 10.1016/j.aca.2009.05.007. [PMID: 19523559]
  • Masuko Kobori, Mayumi Ohnishi-Kameyama, Yukari Akimoto, Chizuko Yukizaki, Mitsuru Yoshida. Alpha-eleostearic acid and its dihydroxy derivative are major apoptosis-inducing components of bitter gourd. Journal of agricultural and food chemistry. 2008 Nov; 56(22):10515-20. doi: 10.1021/jf8020877. [PMID: 18959405]
  • Makio Morita, Masako Tokita. Hydroxy radical, hexanal, and decadienal generation by autocatalysts in autoxidation of linoleate alone and with eleostearate. Lipids. 2008 Jul; 43(7):589-97. doi: 10.1007/s11745-008-3170-9. [PMID: 18493810]
  • Tsuyoshi Tsuzuki, Yuki Kawakami. Tumor angiogenesis suppression by alpha-eleostearic acid, a linolenic acid isomer with a conjugated triene system, via peroxisome proliferator-activated receptor gamma. Carcinogenesis. 2008 Apr; 29(4):797-806. doi: 10.1093/carcin/bgm298. [PMID: 18174233]
  • Rikako Suzuki, Yumiko Yasui, Hiroyuki Kohno, Shingo Miyamoto, Masashi Hosokawa, Kazuo Miyashita, Takuji Tanaka. Catalpa seed oil rich in 9t,11t,13c-conjugated linolenic acid suppresses the development of colonic aberrant crypt foci induced by azoxymethane in rats. Oncology reports. 2006 Nov; 16(5):989-96. doi: 10.3892/or.16.5.989. [PMID: 17016582]
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  • Tsuyoshi Tsuzuki, Yoshiko Tokuyama, Miki Igarashi, Teruo Miyazawa. Tumor growth suppression by alpha-eleostearic acid, a linolenic acid isomer with a conjugated triene system, via lipid peroxidation. Carcinogenesis. 2004 Aug; 25(8):1417-25. doi: 10.1093/carcin/bgh109. [PMID: 14963014]
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