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从脂质双层中的纳米盘重构离子通道并对其功能进行表征。

Reconstitution and functional characterization of ion channels from nanodiscs in lipid bilayers.

机构信息

Plant Membrane Biophysics, Technische Universität Darmstadt, Darmstadt, Germany.

Department of Biochemistry and Howard Hughes Medical Institute, Brandeis University, Waltham, MA.

出版信息

J Gen Physiol. 2018 Apr 2;150(4):637-646. doi: 10.1085/jgp.201711904. Epub 2018 Feb 27.

Abstract

Recent studies have shown that membrane proteins can be efficiently synthesized in vitro before spontaneously inserting into soluble nanoscale lipid bilayers called nanodiscs (NDs). In this paper, we present experimental details that allow a combination of in vitro translation of ion channels into commercially available NDs followed by their direct reconstitution from these nanobilayers into standard bilayer setups for electrophysiological characterization. We present data showing that two model K channels, Kcv and KcsA, as well as a recently discovered dual-topology F channel, Fluc, can be reliably reconstituted from different types of NDs into bilayers without contamination from the in vitro translation cocktail. The functional properties of Kcv and KcsA were characterized electrophysiologically and exhibited sensitivity to the lipid composition of the target DPhPC bilayer, suggesting that the channel proteins were fully exposed to the target membrane and were no longer surrounded by the lipid/protein scaffold. The single-channel properties of the three tested channels are compatible with studies from recordings of the same proteins in other expression systems. Altogether, the data show that synthesis of ion channels into NDs and their subsequent reconstitution into conventional bilayers provide a fast and reliable method for functional analysis of ion channels.

摘要

最近的研究表明,膜蛋白可以在体外有效地合成,然后自发地插入称为纳米盘(NDs)的可溶性纳米级脂质双层中。在本文中,我们介绍了实验细节,允许将离子通道的体外翻译与商业可用的 NDs 结合,然后直接从这些纳米双层中重新组装到标准双层设置中进行电生理特性分析。我们提供的数据表明,两种模型 K 通道 Kcv 和 KcsA 以及最近发现的双拓扑 F 通道 Fluc,可以从不同类型的 NDs 可靠地重新组装到双层中,而不会受到体外翻译混合物的污染。Kcv 和 KcsA 的功能特性通过电生理方法进行了表征,并对靶 DPhPC 双层的脂质组成表现出敏感性,这表明通道蛋白完全暴露于靶膜,不再被脂质/蛋白支架包围。三种测试通道的单通道特性与在其他表达系统中记录相同蛋白质的研究兼容。总的来说,这些数据表明,将离子通道合成到 NDs 中,然后将其重新组装到常规双层中,为离子通道的功能分析提供了一种快速可靠的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0409/5881443/da57d370c5cb/JGP_201711904_Fig1.jpg

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