Literature DB >> 18246469

Discrete roles of apoA-I and apoE in the biogenesis of HDL species: lessons learned from gene transfer studies in different mouse models.

Vassilis I Zannis1, Georgios Koukos, Konstantinos Drosatos, Alexander Vezeridis, Eleni E Zanni, Kyriakos E Kypreos, Angeliki Chroni.   

Abstract

Using adenovirus-mediated gene transfer in apolipoprotein A-I (apoA-I)-deficient mice, we have established that apoA-I mutations inhibit discrete steps in a pathway that leads to the biogenesis and remodeling of high-density lipoprotein (HDL). To this point, five discrete categories of apoA-I mutants have been characterized that may affect the interactions of apoA-I with ATP-binding cassette superfamily A, member 1 (ABCA1) or lecithin:cholesterol acyl transferase (LCAT) or may influence the plasma phospholipid transfer protein activity or may cause various forms of dyslipidemia. Biogenesis of HDL is not a unique property of apoA-I. Using adenovirus-mediated gene transfer of apoE in apoA-I- or ABCA1-deficient mice, we have established that apolipoprotein E (apoE) also participates in a novel pathway of biogenesis of apoE-containing HDL particles. This process requires the functions of the ABCA1 lipid transporter and LCAT, and it is promoted by substitution of hydrophobic residues in the 261 to 269 region of apoE by Ala. The apoE-containing HDL particles formed in the circulation may have atheroprotective properties. ApoE-containing HDL may also have important biological functions in the brain that confer protection from Alzheimer's disease.

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Year:  2008        PMID: 18246469     DOI: 10.1080/07853890701687219

Source DB:  PubMed          Journal:  Ann Med        ISSN: 0785-3890            Impact factor:   4.709


  11 in total

1.  Dysfunctional HDL containing L159R ApoA-I leads to exacerbation of atherosclerosis in hyperlipidemic mice.

Authors:  Mary G Sorci-Thomas; Manal Zabalawi; Manish S Bharadwaj; Ashley J Wilhelm; John S Owen; Bela F Asztalos; Shaila Bhat; Michael J Thomas
Journal:  Biochim Biophys Acta       Date:  2011-09-14

2.  Domains of apoE4 required for the biogenesis of apoE-containing HDL.

Authors:  Alexander M Vezeridis; Angeliki Chroni; Vassilis I Zannis
Journal:  Ann Med       Date:  2011-06       Impact factor: 4.709

3.  Apolipoproteins E and CIII interact to regulate HDL metabolism and coronary heart disease risk.

Authors:  Allyson M Morton; Manja Koch; Carlos O Mendivil; Jeremy D Furtado; Anne Tjønneland; Kim Overvad; Liyun Wang; Majken K Jensen; Frank M Sacks
Journal:  JCI Insight       Date:  2018-02-22

4.  Apolipoprotein A-1 regulates osteoblast and lipoblast precursor cells in mice.

Authors:  Harry C Blair; Elena Kalyvioti; Nicholaos I Papachristou; Irina L Tourkova; Spryros A Syggelos; Despina Deligianni; Malvina G Orkoula; Christos G Kontoyannis; Eleni A Karavia; Kyriakos E Kypreos; Dionysios J Papachristou
Journal:  Lab Invest       Date:  2016-04-18       Impact factor: 5.662

5.  Effect of repeated apoA-IMilano/POPC infusion on lipids, (apo)lipoproteins, and serum cholesterol efflux capacity in cynomolgus monkeys.

Authors:  Herman J Kempen; Monica Gomaraschi; S Eralp Bellibas; Stephanie Plassmann; Brad Zerler; Heidi L Collins; Steven J Adelman; Laura Calabresi; Peter L J Wijngaard
Journal:  J Lipid Res       Date:  2013-07-04       Impact factor: 5.922

6.  Ameliorative effects of a combination of baicalin, jasminoidin and cholic acid on ibotenic acid-induced dementia model in rats.

Authors:  Junying Zhang; Peng Li; Yanping Wang; Jianxun Liu; Zhanjun Zhang; Weidong Cheng; Yongyan Wang
Journal:  PLoS One       Date:  2013-02-20       Impact factor: 3.240

7.  Chronic vitamin A-enriched diet feeding regulates hypercholesterolaemia through transcriptional regulation of reverse cholesterol transport pathway genes in obese rat model of WNIN/GR-Ob strain.

Authors:  Shanmugam M Jeyakumar; Alex Sheril; Ayyalasomayajula Vajreswari
Journal:  Indian J Med Res       Date:  2016-08       Impact factor: 2.375

8.  Population-based resequencing of APOA1 in 10,330 individuals: spectrum of genetic variation, phenotype, and comparison with extreme phenotype approach.

Authors:  Christiane L Haase; Ruth Frikke-Schmidt; Børge G Nordestgaard; Anne Tybjærg-Hansen
Journal:  PLoS Genet       Date:  2012-11-29       Impact factor: 5.917

Review 9.  Evolving targets for lipid-modifying therapy.

Authors:  Rose Q Do; Stephen J Nicholls; Gregory G Schwartz
Journal:  EMBO Mol Med       Date:  2014-10       Impact factor: 12.137

10.  Liver-specific overexpression of LPCAT3 reduces postprandial hyperglycemia and improves lipoprotein metabolic profile in mice.

Authors:  J G Cash; D Y Hui
Journal:  Nutr Diabetes       Date:  2016-04-25       Impact factor: 5.097

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