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The secondary structure of apolipoprotein A-I on 9.6-nm reconstituted high-density lipoprotein determined by EPR spectroscopy

机译:EPR光谱法测定载脂蛋白A-I在9.6nm重构高密度脂蛋白上的二级结构

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摘要

Apolipoprotein A-I (ApoA-I) is the major protein component of high-density lipoprotein (HDL), and is critical for maintenance of cholesterol homeostasis. During reverse cholesterol transport, HDL transitions between an array of subclasses, differing in size and composition. This process requires ApoA-I to adapt to changes in the shape of the HDL particle, transiting from an apolipoprotein to a myriad of HDL subclass-specific conformations. Changes in ApoA-I structure cause alterations in HDL-specific enzyme and receptor-binding properties, and thereby direct the HDL particle through the reverse cholesterol transport pathway. In this study, we used site-directed spin label spectroscopy to examine the conformational details of the ApoA-I central domain on HDL. The motional dynamics and accessibility to hydrophobic/hydrophilic relaxation agents of ApoA-I residues 99–163 on 9.6-nm reconstituted HDL was analyzed by EPR. In previous analyses, we examined residues 6–98 and 164–238 (of ApoA-I's 243 residues), and combining these findings with the current results, we have generated a full-length map of the backbone structure of reconstituted HDL-associated ApoA-I. Remarkably, given that the majority of ApoA-I's length is composed of amphipathic helices, we have identified nonhelical residues, specifically the presence of a β-strand (residues 149–157). The significance of these nonhelical residues is discussed, along with the other features, in the context of ApoA-I function in contrast to recent models derived by other methods.
机译:载脂蛋白A-I(ApoA-I)是高密度脂蛋白(HDL)的主要蛋白质成分,对于维持胆固醇稳态至关重要。在胆固醇逆向转运过程中,HDL在一系列大小和组成不同的亚类之间转换。这个过程需要ApoA-I适应HDL颗粒形状的变化,从载脂蛋白转变为无数的HDL亚类特异性构象。 ApoA-I结构的变化会引起HDL特异性酶和受体结合特性的改变,从而使HDL颗粒通过反向胆固醇转运途径。在这项研究中,我们使用了定点旋转标记光谱技术来检查HDL上ApoA-I中央结构域的构象细节。 EPR分析了9.6 nm重组HDL上ApoA-I残基99-163的运动动力学和疏水/亲水松弛剂的可及性。在先前的分析中,我们检查了ApoA-I的243个残基中的残基6-98和164-238,并将这些发现与当前结果相结合,我们生成了与HDL相关的重组ApoA的骨架结构的全长图-一世。值得注意的是,考虑到ApoA-I的大部分长度是由两亲性螺旋组成的,我们已经鉴定出非螺旋残基,特别是存在β链(残基149-157)。与其他方法衍生的最新模型相比,在ApoA-I功能的背景下讨论了这些非螺旋残基的重要性以及其他特征。

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