26-Hydroxycholesterol (BioDeep_00000843560)
Main id: BioDeep_00000636693
natural product
代谢物信息卡片
化学式: C27H46O2 (402.34976159999997)
中文名称:
谱图信息:
最多检出来源 () 0%
分子结构信息
SMILES: CC(CCCC(C)C1CCC2C1(CCC3C2CC=C4C3(CCC(C4)O)C)C)CO
InChI: InChI=1S/C27H46O2/c1-18(17-28)6-5-7-19(2)23-10-11-24-22-9-8-20-16-21(29)12-14-26(20,3)25(22)13-15-27(23,24)4/h8,18-19,21-25,28-29H,5-7,9-17H2,1-4H3/t18?,19-,21+,22+,23-,24+,25+,26+,27-/m1/s1
描述信息
An oxysterol that is cholesterol substituted at position 26 by a hydroxy group.
同义名列表
数据库引用编号
12 个数据库交叉引用编号
- ChEBI: CHEBI:17703
- KEGG: C15610
- PubChem: 99470
- ChEMBL: CHEMBL3217768
- LipidMAPS: LMST01010057
- CAS: 13095-61-9
- CAS: 26259-77-8
- MetaboLights: MTBLC17703
- PubChem: 17396601
- NIKKAJI: J533.768B
- KNApSAcK: 17703
- LOTUS: LTS0211924
分类词条
相关代谢途径
Reactome(12)
- Metabolism
- Biological oxidations
- Phase I - Functionalization of compounds
- Phase II - Conjugation of compounds
- Cytosolic sulfonation of small molecules
- Metabolism of lipids
- Metabolism of steroids
- Cytochrome P450 - arranged by substrate type
- Bile acid and bile salt metabolism
- Synthesis of bile acids and bile salts
- Synthesis of bile acids and bile salts via 27-hydroxycholesterol
- Endogenous sterols
BioCyc(0)
PlantCyc(0)
代谢反应
83 个相关的代谢反应过程信息。
Reactome(82)
- Metabolism:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Metabolism of lipids:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Metabolism of steroids:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Bile acid and bile salt metabolism:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Synthesis of bile acids and bile salts:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Synthesis of bile acids and bile salts via 27-hydroxycholesterol:
CHOL + H+ + Oxygen + TPNH ⟶ 27OH-CHOL + H2O + TPN
- Metabolism:
1-3-oxo-THA-CoA + CoA-SH ⟶ DHA-CoA + propionyl CoA
- Metabolism of lipids:
1-3-oxo-THA-CoA + CoA-SH ⟶ DHA-CoA + propionyl CoA
- Metabolism of steroids:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Bile acid and bile salt metabolism:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Synthesis of bile acids and bile salts:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Synthesis of bile acids and bile salts via 27-hydroxycholesterol:
CHOL + H+ + Oxygen + TPNH ⟶ 27OH-CHOL + H2O + TPN
- Metabolism:
2MACA-CoA + CoA ⟶ Ac-CoA + PROP-CoA
- Metabolism of lipids:
1-3-oxo-THA-CoA + CoA-SH ⟶ DHA-CoA + propionyl CoA
- Metabolism of steroids:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Bile acid and bile salt metabolism:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Synthesis of bile acids and bile salts:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Synthesis of bile acids and bile salts via 27-hydroxycholesterol:
27HCHOL + H+ + Oxygen + TPNH ⟶ 7alpha,26-dihydroxycholesterol + H2O + TPN
- Metabolism:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Metabolism of lipids:
1-3-oxo-THA-CoA + CoA-SH ⟶ DHA-CoA + propionyl CoA
- Metabolism of steroids:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Bile acid and bile salt metabolism:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Synthesis of bile acids and bile salts:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Synthesis of bile acids and bile salts via 27-hydroxycholesterol:
CHOL + H+ + Oxygen + TPNH ⟶ 27OH-CHOL + H2O + TPN
- Metabolism:
1-3-oxo-THA-CoA + CoA-SH ⟶ DHA-CoA + propionyl CoA
- Metabolism of lipids:
1-3-oxo-THA-CoA + CoA-SH ⟶ DHA-CoA + propionyl CoA
- Metabolism of steroids:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Bile acid and bile salt metabolism:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Synthesis of bile acids and bile salts:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Synthesis of bile acids and bile salts via 27-hydroxycholesterol:
CHOL + H+ + Oxygen + TPNH ⟶ 27OH-CHOL + H2O + TPN
- Metabolism:
2MACA-CoA + CoA ⟶ Ac-CoA + PROP-CoA
- Metabolism of lipids:
1-3-oxo-THA-CoA + CoA-SH ⟶ DHA-CoA + propionyl CoA
- Metabolism of steroids:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Bile acid and bile salt metabolism:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Synthesis of bile acids and bile salts:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Synthesis of bile acids and bile salts via 27-hydroxycholesterol:
CHOL + H+ + Oxygen + TPNH ⟶ 27OH-CHOL + H2O + TPN
- Metabolism:
ATP + PROP-CoA + carbon dioxide ⟶ ADP + MEMA-CoA + Pi
- Metabolism of lipids:
ATP + PROP-CoA + carbon dioxide ⟶ ADP + MEMA-CoA + Pi
- Metabolism of steroids:
17aHPROG + H+ + Oxygen + TPNH ⟶ 11-deoxycortisol + H2O + TPN
- Bile acid and bile salt metabolism:
CHOL + H+ + Oxygen + TPNH ⟶ 7alpha-hydroxycholesterol + H2O + TPN
- Synthesis of bile acids and bile salts:
CHOL + H+ + Oxygen + TPNH ⟶ 7alpha-hydroxycholesterol + H2O + TPN
- Synthesis of bile acids and bile salts via 27-hydroxycholesterol:
CHOL + H+ + Oxygen + TPNH ⟶ 27OH-CHOL + H2O + TPN
- Metabolism:
1-3-oxo-THA-CoA + CoA-SH ⟶ DHA-CoA + propionyl CoA
- Metabolism of lipids:
1-3-oxo-THA-CoA + CoA-SH ⟶ DHA-CoA + propionyl CoA
- Metabolism of steroids:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Bile acid and bile salt metabolism:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Synthesis of bile acids and bile salts:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Synthesis of bile acids and bile salts via 27-hydroxycholesterol:
CHOL + H+ + Oxygen + TPNH ⟶ 27OH-CHOL + H2O + TPN
- Metabolism:
1-3-oxo-THA-CoA + CoA-SH ⟶ DHA-CoA + propionyl CoA
- Metabolism of lipids:
1-3-oxo-THA-CoA + CoA-SH ⟶ DHA-CoA + propionyl CoA
- Metabolism of steroids:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Bile acid and bile salt metabolism:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Synthesis of bile acids and bile salts:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Synthesis of bile acids and bile salts via 27-hydroxycholesterol:
CHOL + H+ + Oxygen + TPNH ⟶ 27OH-CHOL + H2O + TPN
- Biological oxidations:
11DCORT + H+ + Oxygen + TPNH ⟶ CORT + H2O + TPN
- Phase I - Functionalization of compounds:
11DCORT + H+ + Oxygen + TPNH ⟶ CORT + H2O + TPN
- Cytochrome P450 - arranged by substrate type:
11DCORT + H+ + Oxygen + TPNH ⟶ CORT + H2O + TPN
- Endogenous sterols:
11DCORT + H+ + Oxygen + TPNH ⟶ CORT + H2O + TPN
- Biological oxidations:
11DCORT + H+ + Oxygen + TPNH ⟶ CORT + H2O + TPN
- Phase I - Functionalization of compounds:
11DCORT + H+ + Oxygen + TPNH ⟶ CORT + H2O + TPN
- Cytochrome P450 - arranged by substrate type:
11DCORT + H+ + Oxygen + TPNH ⟶ CORT + H2O + TPN
- Endogenous sterols:
11DCORT + H+ + Oxygen + TPNH ⟶ CORT + H2O + TPN
- Biological oxidations:
11DCORT + H+ + Oxygen + TPNH ⟶ CORT + H2O + TPN
- Phase I - Functionalization of compounds:
11DCORT + H+ + Oxygen + TPNH ⟶ CORT + H2O + TPN
- Cytochrome P450 - arranged by substrate type:
11DCORT + H+ + Oxygen + TPNH ⟶ CORT + H2O + TPN
- Endogenous sterols:
11DCORT + H+ + Oxygen + TPNH ⟶ CORT + H2O + TPN
- Biological oxidations:
11DCORT + H+ + Oxygen + TPNH ⟶ CORT + H2O + TPN
- Phase I - Functionalization of compounds:
11DCORT + H+ + Oxygen + TPNH ⟶ CORT + H2O + TPN
- Cytochrome P450 - arranged by substrate type:
11DCORT + H+ + Oxygen + TPNH ⟶ CORT + H2O + TPN
- Endogenous sterols:
11DCORT + H+ + Oxygen + TPNH ⟶ CORT + H2O + TPN
- Biological oxidations:
11DCORT + H+ + Oxygen + TPNH ⟶ CORT + H2O + TPN
- Phase I - Functionalization of compounds:
11DCORT + H+ + Oxygen + TPNH ⟶ CORT + H2O + TPN
- Cytochrome P450 - arranged by substrate type:
11DCORT + H+ + Oxygen + TPNH ⟶ CORT + H2O + TPN
- Endogenous sterols:
11DCORT + H+ + Oxygen + TPNH ⟶ CORT + H2O + TPN
- Biological oxidations:
11DCORT + H+ + Oxygen + TPNH ⟶ CORT + H2O + TPN
- Phase I - Functionalization of compounds:
11DCORT + H+ + Oxygen + TPNH ⟶ CORT + H2O + TPN
- Cytochrome P450 - arranged by substrate type:
11DCORT + H+ + Oxygen + TPNH ⟶ CORT + H2O + TPN
- Endogenous sterols:
11DCORT + H+ + Oxygen + TPNH ⟶ CORT + H2O + TPN
- Biological oxidations:
H+ + Oxygen + TPNH + aflatoxin B1 ⟶ AFXBO + H2O + TPN
- Phase I - Functionalization of compounds:
H+ + Oxygen + TPNH + aflatoxin B1 ⟶ AFXBO + H2O + TPN
- Cytochrome P450 - arranged by substrate type:
H+ + Oxygen + TPNH + aflatoxin B1 ⟶ AFXBO + H2O + TPN
- Endogenous sterols:
EST17b + H+ + Oxygen + TPNH ⟶ 4OH-EST17b + H2O + TPN
BioCyc(0)
Plant Reactome(0)
INOH(0)
PlantCyc(0)
COVID-19 Disease Map(0)
PathBank(0)
PharmGKB(0)
8 个相关的物种来源信息
- 7711 - Chordata: LTS0211924
- 2759 - Eukaryota: LTS0211924
- 9604 - Hominidae: LTS0211924
- 9605 - Homo: LTS0211924
- 9606 - Homo sapiens: 10.1038/NBT.2488
- 9606 - Homo sapiens: LTS0211924
- 40674 - Mammalia: LTS0211924
- 33208 - Metazoa: LTS0211924
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。
文献列表
- S Matysik, H H Klünemann, G Schmitz. Gas chromatography-tandem mass spectrometry method for the simultaneous determination of oxysterols, plant sterols, and cholesterol precursors.
Clinical chemistry.
2012 Nov; 58(11):1557-64. doi:
10.1373/clinchem.2012.189605
. [PMID: 22997279] - Xin Zhang, Qianming Bai, Genta Kakiyama, Leyuan Xu, Jin Kyung Kim, William M Pandak, Shunlin Ren. Cholesterol metabolite, 5-cholesten-3β-25-diol-3-sulfate, promotes hepatic proliferation in mice.
The Journal of steroid biochemistry and molecular biology.
2012 Nov; 132(3-5):262-70. doi:
10.1016/j.jsbmb.2012.06.001
. [PMID: 22732306] - Akihiko Kimura, Hiroshi Nittono, Tatsuki Mizuochi, Isao Ueki, Takao Kurosawa, Akina Muto, Hajime Takei. Neonatal cholestasis with increased 3β-monohydroxy-Δ⁵ bile acids in serum and urine: not necessarily primary oxysterol 7α hydroxylase deficiency.
Clinica chimica acta; international journal of clinical chemistry.
2012 Oct; 413(19-20):1700-4. doi:
10.1016/j.cca.2012.05.016
. [PMID: 22652365] - Julius Popp, Piotr Lewczuk, Heike Kölsch, Sabrina Meichsner, Wolfgang Maier, Johannes Kornhuber, Frank Jessen, Dieter Lütjohann. Cholesterol metabolism is associated with soluble amyloid precursor protein production in Alzheimer's disease.
Journal of neurochemistry.
2012 Oct; 123(2):310-6. doi:
10.1111/j.1471-4159.2012.07893.x
. [PMID: 22845771] - M Bertolotti, M Del Puppo, F Corna, C Anzivino, C Gabbi, E Baldelli, L Carulli, P Loria, M Galli Kienle, N Carulli. Increased appearance rate of 27-hydroxycholesterol in vivo in hypercholesterolemia: a possible compensatory mechanism.
Nutrition, metabolism, and cardiovascular diseases : NMCD.
2012 Oct; 22(10):823-30. doi:
10.1016/j.numecd.2011.02.009
. [PMID: 21546230] - Tzu Pin Shentu, Dev K Singh, Myung-Jin Oh, Shan Sun, Laleh Sadaat, Ayako Makino, Theodore Mazzone, Papasani V Subbaiah, Michael Cho, Irena Levitan. The role of oxysterols in control of endothelial stiffness.
Journal of lipid research.
2012 Jul; 53(7):1348-58. doi:
10.1194/jlr.m027102
. [PMID: 22496390] - Johanne Poirier, Kevin A Cockell, Kylie A Scoggan, W M Nimal Ratnayake, Hélène Rocheleau, Heidi Gruber, Eleonora Swist, Philip Griffin, Claude Gagnon, Stan Kubow. High-dose supplemental selenite to male Syrian hamsters fed hypercholesterolaemic diets alters Ldlr, Abcg8 and Npc1l1 mRNA expression and lowers plasma cholesterol concentrations.
The British journal of nutrition.
2012 Jul; 108(2):257-66. doi:
10.1017/s0007114511005587
. [PMID: 22152646] - Jeffrey G McDonald, Daniel D Smith, Ashlee R Stiles, David W Russell. A comprehensive method for extraction and quantitative analysis of sterols and secosteroids from human plasma.
Journal of lipid research.
2012 Jul; 53(7):1399-409. doi:
10.1194/jlr.d022285
. [PMID: 22517925] - Charles Desmarchelier, Christoph Dahlhoff, Sylvia Keller, Manuela Sailer, Gerhard Jahreis, Hannelore Daniel. C57Bl/6 N mice on a western diet display reduced intestinal and hepatic cholesterol levels despite a plasma hypercholesterolemia.
BMC genomics.
2012 Mar; 13(?):84. doi:
10.1186/1471-2164-13-84
. [PMID: 22394543] - Randy L Bogan, Andrea E Debarber, Jon D Hennebold. Liver x receptor modulation of gene expression leading to proluteolytic effects in primate luteal cells.
Biology of reproduction.
2012 Mar; 86(3):89. doi:
10.1095/biolreprod.111.096347
. [PMID: 22156476] - Gavin Tansley, Daniel T Holmes, Dieter Lütjohann, Elizabeth Head, Cheryl L Wellington. Sterol lipid metabolism in down syndrome revisited: down syndrome is associated with a selective reduction in serum brassicasterol levels.
Current gerontology and geriatrics research.
2012; 2012(?):179318. doi:
10.1155/2012/179318
. [PMID: 22649448] - Laura Mateos, Muhammad-Al-Mustafa Ismail, Bengt Winblad, Angel Cedazo-Mínguez. side-chain-oxidized oxysterols upregulate ACE2 and Mas receptor in rat primary neurons.
Neuro-degenerative diseases.
2012; 10(1-4):313-6. doi:
10.1159/000333340
. [PMID: 22236548] - Yvonne Lange, Jin Ye, Theodore L Steck. Activation mobilizes the cholesterol in the late endosomes-lysosomes of Niemann Pick type C cells.
PloS one.
2012; 7(1):e30051. doi:
10.1371/journal.pone.0030051
. [PMID: 22276143] - Timothy M Hughes, Lewis H Kuller, Oscar L Lopez, James T Becker, Rhobert W Evans, Kim Sutton-Tyrrell, Caterina Rosano. Markers of cholesterol metabolism in the brain show stronger associations with cerebrovascular disease than Alzheimer's disease.
Journal of Alzheimer's disease : JAD.
2012; 30(1):53-61. doi:
10.3233/jad-2012-111460
. [PMID: 22377780] - Elad Cohen, Michael Aviram, Soliman Khatib, Asaf Rabin, Dalit Mannheim, Ron Karmeli, Jacob Vaya. Increased Levels of Human Carotid Lesion Linoleic Acid Hydroperoxide in Symptomatic and Asymptomatic Patients Is Inversely Correlated with Serum HDL and Paraoxonase 1 Activity.
Journal of lipids.
2012; 2012(?):762560. doi:
10.1155/2012/762560
. [PMID: 22690338] - Bernard G Schreurs, Desheng Wang, Carrie A Smith-Bell, Lauren B Burhans, Roger Bell, Jimena Gonzalez-Joekes. Dietary Cholesterol Concentration and Duration Degrade Long-Term Memory of Classical Conditioning of the Rabbit's Nictitating Membrane Response.
International journal of Alzheimer's disease.
2012; 2012(?):732634. doi:
10.1155/2012/732634
. [PMID: 22567532] - Tiangang Li, John Y L Chiang. Bile Acid signaling in liver metabolism and diseases.
Journal of lipids.
2012; 2012(?):754067. doi:
10.1155/2012/754067
. [PMID: 21991404] - Jorge A López-Velázquez, Luis D Carrillo-Córdova, Norberto C Chávez-Tapia, Misael Uribe, Nahum Méndez-Sánchez. Nuclear receptors in nonalcoholic Fatty liver disease.
Journal of lipids.
2012; 2012(?):139875. doi:
10.1155/2012/139875
. [PMID: 22187655] - Andrea Crosignani, Massimo Zuin, Mariangela Allocca, Marina Del Puppo. Oxysterols in bile acid metabolism.
Clinica chimica acta; international journal of clinical chemistry.
2011 Nov; 412(23-24):2037-45. doi:
10.1016/j.cca.2011.07.028
. [PMID: 21855537] - Rodrigo T Iborra, Adriana Machado-Lima, Gabriela Castilho, Valeria S Nunes, Dulcinéia S P Abdalla, Edna R Nakandakare, Marisa Passarelli. Advanced glycation in macrophages induces intracellular accumulation of 7-ketocholesterol and total sterols by decreasing the expression of ABCA-1 and ABCG-1.
Lipids in health and disease.
2011 Sep; 10(?):172. doi:
10.1186/1476-511x-10-172
. [PMID: 21957962] - Kristin L Bowden, Nicolas J Bilbey, Leanne M Bilawchuk, Emmanuel Boadu, Rohini Sidhu, Daniel S Ory, Hong Du, Teddy Chan, Gordon A Francis. Lysosomal acid lipase deficiency impairs regulation of ABCA1 gene and formation of high density lipoproteins in cholesteryl ester storage disease.
The Journal of biological chemistry.
2011 Sep; 286(35):30624-30635. doi:
10.1074/jbc.m111.274381
. [PMID: 21757691] - Valerio Leoni, Claudio Caccia. Oxysterols as biomarkers in neurodegenerative diseases.
Chemistry and physics of lipids.
2011 Sep; 164(6):515-24. doi:
10.1016/j.chemphyslip.2011.04.002
. [PMID: 21515244] - Bhanu Dasari, Jaya Rp Prasanthi, Gurdeep Marwarha, Brij B Singh, Othman Ghribi. Cholesterol-enriched diet causes age-related macular degeneration-like pathology in rabbit retina.
BMC ophthalmology.
2011 Aug; 11(?):22. doi:
10.1186/1471-2415-11-22
. [PMID: 21851605] - Akira Honda, Teruo Miyazaki, Tadashi Ikegami, Junichi Iwamoto, Tomomi Maeda, Takeshi Hirayama, Yoshifumi Saito, Tamio Teramoto, Yasushi Matsuzaki. Cholesterol 25-hydroxylation activity of CYP3A.
Journal of lipid research.
2011 Aug; 52(8):1509-16. doi:
10.1194/jlr.m014084
. [PMID: 21576599] - Laura Mateos, Muhammad-Al-Mustafa Ismail, Francisco-Javier Gil-Bea, Rebecca Schüle, Ludger Schöls, Maura Heverin, Ronnie Folkesson, Ingemar Björkhem, Angel Cedazo-Mínguez. Side chain-oxidized oxysterols regulate the brain renin-angiotensin system through a liver X receptor-dependent mechanism.
The Journal of biological chemistry.
2011 Jul; 286(29):25574-85. doi:
10.1074/jbc.m111.236877
. [PMID: 21628469] - Jin-Hui Zhang, Liang Ge, Wei Qi, Liqing Zhang, Hong-Hua Miao, Bo-Liang Li, Maojun Yang, Bao-Liang Song. The N-terminal domain of NPC1L1 protein binds cholesterol and plays essential roles in cholesterol uptake.
The Journal of biological chemistry.
2011 Jul; 286(28):25088-97. doi:
10.1074/jbc.m111.244475
. [PMID: 21602275] - Raymond C S Seet, Chung-Yung J Lee, Wai Mun Loke, Shan Hong Huang, Huiwen Huang, Woan Foon Looi, Eng Soh Chew, Amy M L Quek, Erle C H Lim, Barry Halliwell. Biomarkers of oxidative damage in cigarette smokers: which biomarkers might reflect acute versus chronic oxidative stress?.
Free radical biology & medicine.
2011 Jun; 50(12):1787-93. doi:
10.1016/j.freeradbiomed.2011.03.019
. [PMID: 21420490] - Paola Gamba, Gabriella Leonarduzzi, Elena Tamagno, Michela Guglielmotto, Gabriella Testa, Barbara Sottero, Simona Gargiulo, Fiorella Biasi, Alessandro Mauro, José Viña, Giuseppe Poli. Interaction between 24-hydroxycholesterol, oxidative stress, and amyloid-β in amplifying neuronal damage in Alzheimer's disease: three partners in crime.
Aging cell.
2011 Jun; 10(3):403-17. doi:
10.1111/j.1474-9726.2011.00681.x
. [PMID: 21272192] - V Leoni, C Mariotti, L Nanetti, E Salvatore, F Squitieri, A R Bentivoglio, M Bandettini di Poggio, M Bandettini Del Poggio, S Piacentini, D Monza, M Valenza, E Cattaneo, S Di Donato. Whole body cholesterol metabolism is impaired in Huntington's disease.
Neuroscience letters.
2011 May; 494(3):245-9. doi:
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