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载脂蛋白 A-I N 端突变与 ABCA1 的相互作用揭示了新生 HDL 生成的机制。

N-terminal mutation of apoA-I and interaction with ABCA1 reveal mechanisms of nascent HDL biogenesis.

机构信息

Department of Physiology and Biophysics, Boston University School of Medicine, Boston, MA 02118.

Department of Physiology and Biophysics, Boston University School of Medicine, Boston, MA 02118

出版信息

J Lipid Res. 2019 Jan;60(1):44-57. doi: 10.1194/jlr.M084376. Epub 2018 Sep 24.

Abstract

ApoA-I and ABCA1 play important roles in nascent HDL (nHDL) biogenesis, the first step in the pathway of reverse cholesterol transport that protects against cardiovascular disease. On the basis of the crystal structure of a C-terminally truncated form of apoA-I[Δ(185-243)] determined in our laboratory, we hypothesized that opening the N-terminal helix bundle would facilitate lipid binding. To that end, we structurally designed a mutant (L38G/K40G) to destabilize the N-terminal helical bundle at the first hinge region. Conformational characterization of this mutant in solution revealed minimally reduced α-helical content, a less-compact overall structure, and increased lipid-binding ability. In solution-binding studies, apoA-I and purified ABCA1 also showed direct binding between them. In ABCA1-transfected HEK293 cells, L38G/K40G had a significantly enhanced ability to form nHDL, which suggests that a destabilized N-terminal bundle facilitates nHDL formation. The total cholesterol efflux from ABCA1-transfected HEK293 cells was unchanged in mutant versus WT apoA-I, though, which suggests that cholesterol efflux and nHDL particle formation might be uncoupled events. Analysis of the particles in the efflux media revealed a population of apoA-I-free lipid particles along with nHDL. This model improves knowledge of nHDL formation for future research.

摘要

载脂蛋白 A-I(ApoA-I)和 ABCA1 在新生高密度脂蛋白(nHDL)的生成中发挥重要作用,新生高密度脂蛋白的生成是胆固醇逆向转运途径的第一步,该途径可预防心血管疾病。基于我们实验室确定的截短型载脂蛋白 A-I[Δ(185-243)]的晶体结构,我们假设打开 N 端螺旋束将有利于脂质结合。为此,我们通过结构设计一个突变体(L38G/K40G),在第一个铰链区破坏 N 端螺旋束的稳定性。该突变体在溶液中的构象特征显示α-螺旋含量略有降低,整体结构不太紧凑,并且具有增强的脂质结合能力。在溶液结合研究中,载脂蛋白 A-I 和纯化的 ABCA1 也显示出它们之间的直接结合。在 ABCA1 转染的 HEK293 细胞中,L38G/K40G 形成 nHDL 的能力显著增强,这表明不稳定的 N 端束有利于 nHDL 的形成。尽管突变型载脂蛋白 A-I 与野生型载脂蛋白 A-I 相比,从 ABCA1 转染的 HEK293 细胞中的胆固醇外排没有变化,但这表明胆固醇外排和 nHDL 颗粒形成可能是不偶联的事件。对流出液中的颗粒进行分析表明,除了 nHDL 之外,还有载脂蛋白 A-I 缺失的脂质颗粒存在。该模型提高了对未来研究中 nHDL 形成的认识。

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