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遗传密码扩展在离子通道的机理研究中的应用:化学与生物学的(非)天然结合。

Genetic Code Expansion for Mechanistic Studies in Ion Channels: An (Un)natural Union of Chemistry and Biology.

机构信息

Department of Molecular Physiology and Biophysics, University of Iowa, Iowa City, Iowa 52242, United States.

出版信息

Chem Rev. 2024 Oct 23;124(20):11523-11543. doi: 10.1021/acs.chemrev.4c00306. Epub 2024 Aug 29.

Abstract

Ion channels play central roles in biology and human health by catalyzing the transmembrane flow of electrical charge. These proteins are ideal targets for genetic code expansion (GCE) methods because it is feasible to measure ion channel activity from miniscule amounts of protein and to analyze the resulting data via rigorous, established biophysical methods. In an ideal scenario, the encoding of synthetic, noncanonical amino acids via GCE allows the experimenter to ask questions inaccessible to traditional methods. For this reason, GCE has been successfully applied to a variety of ligand- and voltage-gated channels wherein extensive structural, functional, and pharmacological data exist. Here, we provide a comprehensive summary of GCE as applied to ion channels. We begin with an overview of the methods used to encode noncanonical amino acids in channels and then describe mechanistic studies wherein GCE was used for photochemistry (cross-linking; caged amino acids) and atomic mutagenesis (isosteric manipulation of charge and aromaticity; backbone mutation). Lastly, we cover recent advances in the encoding of fluorescent amino acids for the real-time study of protein conformational dynamics.

摘要

离子通道通过催化跨膜电荷流动在生物学和人类健康中发挥核心作用。这些蛋白质是遗传密码扩展 (GCE) 方法的理想靶标,因为可以从小量的蛋白质中测量离子通道活性,并通过严格的既定生物物理方法分析得到的数据。在理想情况下,通过 GCE 对合成的、非规范氨基酸进行编码,使实验者能够提出传统方法无法解决的问题。出于这个原因,GCE 已成功应用于各种配体门控和电压门控通道,其中存在广泛的结构、功能和药理学数据。在这里,我们全面总结了将 GCE 应用于离子通道的情况。我们首先概述了用于在通道中编码非规范氨基酸的方法,然后描述了使用 GCE 进行光化学(交联;笼状氨基酸)和原子诱变(电荷和芳香性的等排操作;骨架突变)的机制研究。最后,我们介绍了用于实时研究蛋白质构象动力学的荧光氨基酸编码的最新进展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6865/11503617/5ef5046a4173/cr4c00306_0001.jpg

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