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Apolipoprotein A1 Forms 5/5 and 5/4 Antiparallel Dimers in Human High-density Lipoprotein.载脂蛋白 A1 在人高密度脂蛋白中形成 5/5 和 5/4 反平行二聚体。
Mol Cell Proteomics. 2019 May;18(5):854-864. doi: 10.1074/mcp.RA118.000878. Epub 2019 Jan 18.
2
Characterization of covalent modifications of HDL apoproteins by endogenous oxidized phospholipids.内源性氧化磷脂对 HDL 载脂蛋白的共价修饰的特征。
Free Radic Biol Med. 2018 Feb 1;115:57-67. doi: 10.1016/j.freeradbiomed.2017.11.012. Epub 2017 Nov 15.
3
High-Density Lipoprotein Biogenesis: Defining the Domains Involved in Human Apolipoprotein A-I Lipidation.高密度脂蛋白生物合成:确定参与人载脂蛋白A-I脂质化的结构域。
Biochemistry. 2016 Sep 6;55(35):4971-81. doi: 10.1021/acs.biochem.6b00347. Epub 2016 Aug 23.
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Effect of inflammation on HDL structure and function.炎症对高密度脂蛋白结构和功能的影响。
Curr Opin Lipidol. 2016 Oct;27(5):521-30. doi: 10.1097/MOL.0000000000000333.
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Dysfunctional HDL and atherosclerotic cardiovascular disease.功能失调的高密度脂蛋白与动脉粥样硬化性心血管疾病。
Nat Rev Cardiol. 2016 Jan;13(1):48-60. doi: 10.1038/nrcardio.2015.124. Epub 2015 Sep 1.
6
The dual nature of HDL: Anti-Inflammatory and pro-Inflammatory.高密度脂蛋白的双重性质:抗炎和促炎。
Biofactors. 2015 May 6;41(3):153-9. doi: 10.1002/biof.1205. Epub 2015 Jun 13.
7
HDL particle size is a critical determinant of ABCA1-mediated macrophage cellular cholesterol export.高密度脂蛋白颗粒大小是 ABCA1 介导的巨噬细胞细胞胆固醇流出的关键决定因素。
Circ Res. 2015 Mar 27;116(7):1133-42. doi: 10.1161/CIRCRESAHA.116.305485. Epub 2015 Jan 14.
8
Site-specific nitration of apolipoprotein A-I at tyrosine 166 is both abundant within human atherosclerotic plaque and dysfunctional.载脂蛋白 A-I 酪氨酸 166 位的位点特异性硝化在人动脉粥样硬化斑块中含量丰富且功能失调。
J Biol Chem. 2014 Apr 11;289(15):10276-10292. doi: 10.1074/jbc.M114.556506. Epub 2014 Feb 20.
9
An abundant dysfunctional apolipoprotein A1 in human atheroma.人动脉粥样硬化中丰富的功能失调载脂蛋白 A1。
Nat Med. 2014 Feb;20(2):193-203. doi: 10.1038/nm.3459. Epub 2014 Jan 26.
10
Analysis of covalent modifications of proteins by oxidized phospholipids using a novel method of peptide enrichment.采用新型肽段富集方法分析氧化磷脂对蛋白质的共价修饰。
Anal Chem. 2014 Jan 21;86(2):1254-62. doi: 10.1021/ac4035949. Epub 2014 Jan 2.

氧化磷脂对高密度脂蛋白载脂蛋白的交联修饰:结构特征、检测及功能意义。

Cross-linking modifications of HDL apoproteins by oxidized phospholipids: structural characterization, detection, and functional implications.

机构信息

Department of Inflammation and Immunity, Lerner Research Institute, Cleveland Clinic, Cleveland, Ohio 44195.

Department of Neurosciences, Lerner Research Institute, Cleveland Clinic, Cleveland, Ohio 44195.

出版信息

J Biol Chem. 2020 Feb 14;295(7):1973-1984. doi: 10.1074/jbc.RA119.008445. Epub 2020 Jan 6.

DOI:10.1074/jbc.RA119.008445
PMID:31907281
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7029106/
Abstract

Apolipoprotein A-I (apoA-I) is cross-linked and dysfunctional in human atheroma. Although multiple mechanisms of apoA-I cross-linking have been demonstrated , the mechanisms of cross-linking are not well-established. We have recently demonstrated the highly selective and efficient modification of high-density lipoprotein (HDL) apoproteins by endogenous oxidized phospholipids (oxPLs), including γ-ketoalkenal phospholipids. In the current study, we report that γ-ketoalkenal phospholipids effectively cross-link apoproteins in HDL. We further demonstrate that cross-linking impairs the cholesterol efflux mediated by apoA-I or HDL3 and Using LC-MS/MS analysis, we analyzed the pattern of apoprotein cross-linking in isolated human HDL either by synthetic γ-ketoalkenal phospholipids or by oxPLs generated during HDL oxidation in plasma by the physiologically relevant MPO-HO-NO system. We found that five histidine residues in helices 5-8 of apoA-I are preferably cross-linked by oxPLs, forming stable pyrrole adducts with lysine residues in the helices 3-4 of another apoA-I or in the central domain of apoA-II. We also identified cross-links of apoA-I and apoA-II with two minor HDL apoproteins, apoA-IV and apoE. We detected a similar pattern of apoprotein cross-linking in oxidized murine HDL. We further detected oxPL cross-link adducts of HDL apoproteins in plasma and aorta of hyperlipidemic LDLR mice, including cross-link adducts of apoA-I His-165-apoA-I Lys-93, apoA-I His-154-apoA-I Lys-105, apoA-I His-154-apoA-IV Lys-149, and apoA-II Lys-30-apoE His-227. These findings suggest an important mechanism that contributes to the loss of HDL's atheroprotective function .

摘要

载脂蛋白 A-I (apoA-I) 在人动脉粥样硬化中发生交联和功能障碍。虽然已经证明了多种 apoA-I 交联的机制,但交联机制尚未得到很好的确立。我们最近证明了内源性氧化磷脂(oxPLs),包括γ-酮烯醛磷脂,对高密度脂蛋白(HDL)载脂蛋白具有高度选择性和高效的修饰作用。在本研究中,我们报告γ-酮烯醛磷脂可有效交联 HDL 中的载脂蛋白。我们进一步证明交联会损害 apoA-I 或 HDL3 介导的胆固醇流出,并使用 LC-MS/MS 分析,我们分析了用合成的γ-酮烯醛磷脂或在生理相关的 MPO-HO-NO 系统中由血浆中 HDL 氧化产生的 oxPLs 在分离的人 HDL 中引起的载脂蛋白交联模式。我们发现 apoA-I 螺旋 5-8 中的五个组氨酸残基被 oxPL 优先交联,与螺旋 3-4 中的另一个 apoA-I 或 apoA-II 的中心结构域中的赖氨酸残基形成稳定的吡咯加合物。我们还鉴定了 apoA-I 和 apoA-II 与两种次要的 HDL 载脂蛋白 apoA-IV 和 apoE 的交联。我们在氧化的鼠 HDL 中检测到类似的载脂蛋白交联模式。我们进一步在高脂血症 LDLR 小鼠的血浆和主动脉中检测到 oxPL 交联的 HDL 载脂蛋白加合物,包括 apoA-I His-165-apoA-I Lys-93、apoA-I His-154-apoA-I Lys-105、apoA-I His-154-apoA-IV Lys-149 和 apoA-II Lys-30-apoE His-227 的交联加合物。这些发现表明了一种重要的机制,该机制有助于 HDL 失去其抗动脉粥样硬化功能。