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单组分纳米盘:具有主链柔性可调的两亲性接枝共聚物的热折叠。

Single-component nanodiscs the thermal folding of amphiphilic graft copolymers with the adjusted flexibility of the main chain.

作者信息

Nishimura Tomoki, Hatatani Yusuke, Ando Mitsuru, Sasaki Yoshihiro, Akiyoshi Kazunari

机构信息

Department of Chemistry and Materials, Faculty of Textile Science and Technology, Shinshu University 3-15-1, Tokida Ueda Nagano 386-8567 Japan

Department of Polymer Chemistry, Graduate School of Engineering, Kyoto University Katsura, Nishikyo-ku Kyoto 615-8510 Japan.

出版信息

Chem Sci. 2022 Apr 19;13(18):5243-5251. doi: 10.1039/d2sc01674e. eCollection 2022 May 11.

Abstract

Nanodiscs have attracted considerable attention as structural scaffolds for membrane-protein research and as biomaterials in drug-delivery systems. However, conventional disc-fabrication methods are usually laborious, and disc fabrication the self-assembly of amphiphiles is difficult. Herein, we report the formation of polymer nanodiscs based on the self-assembly of amphiphilic graft copolymers by adjusting the persistence length of the main chain. Amphiphilic graft copolymers with a series of different main-chain persistence lengths were prepared and these formed, depending on the persistence length, either rods, discs, or vesicles. Notably, polymer nanodiscs were formed upon heating a chilled polymer solution without the need for any additives, and the thus obtained nanodiscs were used to solubilize a membrane protein during cell-free protein synthesis. Given the simplicity of this disc-fabrication method and the ability of these discs to solubilize membrane proteins, this study considerably expands the fundamental and practical scope of graft-copolymer nanodiscs and demonstrates their utility as tools for studying the structure and function of membrane proteins.

摘要

纳米圆盘作为用于膜蛋白研究的结构支架以及药物递送系统中的生物材料,已引起了广泛关注。然而,传统的圆盘制备方法通常很费力,而且两亲分子的自组装圆盘制备也很困难。在此,我们报告了通过调节主链的持久长度基于两亲性接枝共聚物的自组装形成聚合物纳米圆盘。制备了一系列具有不同主链持久长度的两亲性接枝共聚物,这些共聚物根据持久长度形成棒状、圆盘状或囊泡状。值得注意的是,加热冷却的聚合物溶液即可形成聚合物纳米圆盘,无需任何添加剂,并且由此获得的纳米圆盘用于在无细胞蛋白质合成过程中溶解膜蛋白。鉴于这种圆盘制备方法的简便性以及这些圆盘溶解膜蛋白的能力,本研究极大地扩展了接枝共聚物纳米圆盘的基础和实际应用范围,并证明了它们作为研究膜蛋白结构和功能工具的实用性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c1b9/9093194/4020f50c978d/d2sc01674e-f1.jpg

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