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Apolipoprotein AI tertiary structures determine stability and phospholipid-binding activity of discoidal high-density lipoprotein particles of different sizes

机译:载脂蛋白AI三级结构决定了不同大小的盘状高密度脂蛋白颗粒的稳定性和磷脂结合活性

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摘要

Human high-density lipoprotein (HDL) plays a key role in the reverse cholesterol transport pathway that delivers excess cholesterol back to the liver for clearance. In vivo, HDL particles vary in size, shape and biological function. The discoidal HDL is a 140–240 kDa, disk-shaped intermediate of mature HDL. During mature spherical HDL formation, discoidal HDLs play a key role in loading cholesterol ester onto the HDL particles by activating the enzyme, lecithin:cholesterol acyltransferase (LCAT). One of the major problems for high-resolution structural studies of discoidal HDL is the difficulty in obtaining pure and, foremost, homogenous sample. We demonstrate here that the commonly used cholate dialysis method for discoidal HDL preparation usually contains 5–10% lipid-poor apoAI that significantly interferes with the high-resolution structural analysis of discoidal HDL using biophysical methods. Using an ultracentrifugation method, we quickly removed lipid-poor apoAI. We also purified discoidal reconstituted HDL (rHDL) into two pure discoidal HDL species of different sizes that are amendable for high-resolution structural studies. A small rHDL has a diameter of 7.6 nm, and a large rHDL has a diameter of 9.8 nm. We show that these two different sizes of discoidal HDL particles display different stability and phospholipid-binding activity. Interestingly, these property/functional differences are independent from the apoAI α-helical secondary structure, but are determined by the tertiary structural difference of apoAI on different discoidal rHDL particles, as evidenced by two-dimensional NMR and negative stain electron microscopy data. Our result further provides the first high-resolution NMR data, demonstrating a promise of structural determination of discoidal HDL at atomic resolution using a combination of NMR and other biophysical techniques.
机译:人的高密度脂蛋白(HDL)在逆向胆固醇运输途径中起着关键作用,该途径将多余的胆固醇输送回肝脏进行清除。在体内,HDL颗粒的大小,形状和生物学功能各不相同。盘状HDL是成熟HDL的140–240 kDa盘状中间体。在成熟的球形HDL形成过程中,盘状HDL通过激活酶卵磷脂:胆固醇酰基转移酶(LCAT)在将胆固醇酯加载到HDL颗粒上起关键作用。盘状HDL高分辨率结构研究的主要问题之一是难以获得纯净的,最重要的是均匀的样本。我们在此证明,用于盘状HDL制备的常用胆酸盐透析方法通常包含5-10%的贫脂apoAI,这会严重干扰使用生物物理方法对盘状HDL进行高分辨率结构分析。使用超速离心方法,我们快速去除了脂质不足的apoAI。我们还将纯化的盘状重组HDL(rHDL)纯化为两个不同大小的纯盘状HDL物种,它们可用于高分辨率结构研究。小rHDL的直径为7.6 nm,大rHDL的直径为9.8 nm。我们表明,这两种不同大小的盘状HDL颗粒显示出不同的稳定性和磷脂结合活性。有趣的是,这些性质/功能差异与apoAIα-螺旋二级结构无关,但由二维圆盘状rHDL颗粒上apoAI的三级结构差异决定,这由二维NMR和负染色电子显微镜数据证明。我们的结果进一步提供了第一个高分辨率NMR数据,证明了使用NMR和其他生物物理技术相结合以原子分辨率对盘状HDL进行结构测定的希望。

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