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温度和组成依赖性两亲肽-磷脂纳米盘的构象转变。

Temperature- and composition-dependent conformational transitions of amphipathic peptide-phospholipid nanodiscs.

机构信息

Department of Biointerface Chemistry, Faculty of Pharmaceutical Sciences, University of Toyama, Sugitani 2630, Toyama 930-0194, Japan.

Department of Biointerface Chemistry, Faculty of Pharmaceutical Sciences, University of Toyama, Sugitani 2630, Toyama 930-0194, Japan.

出版信息

J Colloid Interface Sci. 2021 Apr 15;588:522-530. doi: 10.1016/j.jcis.2020.12.090. Epub 2020 Dec 28.

DOI:10.1016/j.jcis.2020.12.090
PMID:33429348
Abstract

Nanodiscs are discoidal particles in which a lipid bilayer is encircled by amphipathic molecules such as proteins, peptides, or synthetic polymers. The apolipoprotein-A-I-derived peptide 18A is known to form nanodiscs in the presence of phospholipids, but the detailed mechanism of the formation and deformation of these nanodiscs in response to changes in the surrounding environment is not well understood. Here, we investigated the temperature- and composition-dependent structural changes of 18A-phosphatidylcholine complexes using fluorescence spectroscopy, dynamic light scattering, circular dichroism, static P NMR, and electron microscopy. We found that the nanodiscs in fast isotropic rotational motion increased in size above the gel-to-liquid-crystalline phase transition temperature of the lipid bilayers, resulting in the formation of enlarged nanodiscs and a lamellar phase. The lamellar phase was found to be oriented along the magnetic field. Further increase in temperature induced the formation of lipid vesicles. These transformations were explained using a transition model based on the migration of the peptide from the rim of the nanodiscs to the liquid-crystalline bilayer phase. The study outcomes provide a basis for understanding the design principles of discoidal nanostructures for structural biology and nanomedicine applications.

摘要

纳米盘是一种盘状颗粒,其中双层脂膜被两亲分子(如蛋白质、肽或合成聚合物)环绕。载脂蛋白 A-I 衍生肽 18A 在磷脂存在下形成纳米盘,但对于这些纳米盘在周围环境变化下的形成和变形的详细机制尚不清楚。在这里,我们使用荧光光谱法、动态光散射、圆二色性、静态 P NMR 和电子显微镜研究了 18A-磷脂复合物的温度和组成依赖性结构变化。我们发现,在脂质双层的凝胶到液晶相转变温度以上,快速各向同性旋转运动的纳米盘会增大,从而形成增大的纳米盘和层状相。发现层状相沿磁场取向。进一步提高温度会诱导脂质体的形成。这些转变可以用基于肽从纳米盘边缘迁移到液晶双层相的转变模型来解释。该研究结果为理解用于结构生物学和纳米医学应用的盘状纳米结构的设计原理提供了基础。

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