Literature DB >> 25218443

Acyl-CoA:cholesterol acyltransferases (ACATs/SOATs): Enzymes with multiple sterols as substrates and as activators.

Maximillian A Rogers1, Jay Liu2, Bao-Liang Song3, Bo-Liang Li3, Catherine C Y Chang4, Ta-Yuan Chang5.   

Abstract

Cholesterol is essential to the growth and viability of cells. The metabolites of cholesterol include: steroids, oxysterols, and bile acids, all of which play important physiological functions. Cholesterol and its metabolites have been implicated in the pathogenesis of multiple human diseases, including: atherosclerosis, cancer, neurodegenerative diseases, and diabetes. Thus, understanding how cells maintain the homeostasis of cholesterol and its metabolites is an important area of study. Acyl-coenzyme A:cholesterol acyltransferases (ACATs, also abbreviated as SOATs) converts cholesterol to cholesteryl esters and play key roles in the regulation of cellular cholesterol homeostasis. ACATs are most unusual enzymes because (i) they metabolize diverse substrates including both sterols and certain steroids; (ii) they contain two different binding sites for steroidal molecules. In mammals, there are two ACAT genes that encode two different enzymes, ACAT1 and ACAT2. Both are allosteric enzymes that can be activated by a variety of sterols. In addition to cholesterol, other sterols that possess the 3-beta OH at C-3, including PREG, oxysterols (such as 24(S)-hydroxycholesterol and 27-hydroxycholesterol, etc.), and various plant sterols, could all be ACAT substrates. All sterols that possess the iso-octyl side chain including cholesterol, oxysterols, various plant sterols could all be activators of ACAT. PREG can only be an ACAT substrate because it lacks the iso-octyl side chain required to be an ACAT activator. The unnatural cholesterol analogs epi-cholesterol (with 3-alpha OH in steroid ring B) and ent-cholesterol (the mirror image of cholesterol) contain the iso-octyl side chain but do not have the 3-beta OH at C-3. Thus, they can only serve as activators and cannot serve as substrates. Thus, within the ACAT holoenzyme, there are site(s) that bind sterol as substrate and site(s) that bind sterol as activator; these sites are distinct from each other. These features form the basis to further pursue ACAT structure-function analysis, and can be explored to develop novel allosteric ACAT inhibitors for therapeutic purposes. This article is part of a Special Issue entitled 'Steroid/Sterol signaling'.
Copyright © 2014. Published by Elsevier Ltd.

Entities:  

Keywords:  Acyl-CoA:cholesterol acyltransferase (ACAT/SOAT); Cholesterol; Oxysterols; Plant sterols; Pregnenolone

Mesh:

Substances:

Year:  2014        PMID: 25218443      PMCID: PMC4851438          DOI: 10.1016/j.jsbmb.2014.09.008

Source DB:  PubMed          Journal:  J Steroid Biochem Mol Biol        ISSN: 0960-0760            Impact factor:   4.292


  62 in total

Review 1.  Biological esterification of steroids.

Authors:  R B Hochberg
Journal:  Endocr Rev       Date:  1998-06       Impact factor: 19.871

2.  Acyl-coenzyme A:cholesterol acyltransferase promotes oxidized LDL/oxysterol-induced apoptosis in macrophages.

Authors:  Natalie E Freeman; Antonio E Rusinol; MacRae Linton; David L Hachey; Sergio Fazio; Michael S Sinensky; Douglas Thewke
Journal:  J Lipid Res       Date:  2005-07-01       Impact factor: 5.922

3.  Resistance to diet-induced hypercholesterolemia and gallstone formation in ACAT2-deficient mice.

Authors:  K K Buhman; M Accad; S Novak; R S Choi; J S Wong; R L Hamilton; S Turley; R V Farese
Journal:  Nat Med       Date:  2000-12       Impact factor: 53.440

Review 4.  Biological activities of oxysterols.

Authors:  L L Smith; B H Johnson
Journal:  Free Radic Biol Med       Date:  1989       Impact factor: 7.376

5.  Cholesterol esters as growth regulators of lymphocytic leukaemia cells.

Authors:  M F Mulas; C Abete; D Pulisci; A Pani; B Massidda; S Dessì; A Mandas
Journal:  Cell Prolif       Date:  2011-06-06       Impact factor: 6.831

6.  Detection in bovine adrenal cortex of a lipoidal substance that yields pregnenolone upon treatment with alkali.

Authors:  R B Hochberg; L Bandy; L Ponticorvo; S Lieberman
Journal:  Proc Natl Acad Sci U S A       Date:  1977-03       Impact factor: 11.205

Review 7.  Isoform-specific inhibitors of ACATs: recent advances and promising developments.

Authors:  Taichi Ohshiro; Hiroshi Tomoda
Journal:  Future Med Chem       Date:  2011-12       Impact factor: 3.808

8.  Molecular cloning and functional expression of human acyl-coenzyme A:cholesterol acyltransferase cDNA in mutant Chinese hamster ovary cells.

Authors:  C C Chang; H Y Huh; K M Cadigan; T Y Chang
Journal:  J Biol Chem       Date:  1993-10-05       Impact factor: 5.157

9.  GLC/MS identification of new pregnenolone metabolites in confluent embryonic rat fibroblast cultures.

Authors:  M Damon; C Chavis
Journal:  J Steroid Biochem       Date:  1982-06       Impact factor: 4.292

10.  Molecular cloning and characterization of two isoforms of Saccharomyces cerevisiae acyl-CoA:sterol acyltransferase.

Authors:  C Yu; N J Kennedy; C C Chang; J A Rothblatt
Journal:  J Biol Chem       Date:  1996-09-27       Impact factor: 5.157

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Journal:  Acta Biochim Biophys Sin (Shanghai)       Date:  2016-09-29       Impact factor: 3.848

Review 8.  ACAT1/SOAT1 as a therapeutic target for Alzheimer's disease.

Authors:  Yohei Shibuya; Catherine Cy Chang; Ta-Yuan Chang
Journal:  Future Med Chem       Date:  2015-12-15       Impact factor: 3.808

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10.  Molecular structures of human ACAT2 disclose mechanism for selective inhibition.

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