Department of Inflammation and Immunity, Lerner Research Institute, Cleveland Clinic, Cleveland, Ohio 44195.
Department of Neurosciences, Lerner Research Institute, Cleveland Clinic, Cleveland, Ohio 44195.
J Biol Chem. 2020 Feb 14;295(7):1973-1984. doi: 10.1074/jbc.RA119.008445. Epub 2020 Jan 6.
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 .
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。