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利用基因整合的非天然氨基酸控制哺乳动物细胞中的蛋白质功能。

Using genetically incorporated unnatural amino acids to control protein functions in mammalian cells.

机构信息

School of Chemistry, Cardiff University, Cardiff, Wales, United Kingdom.

School of Chemistry, Cardiff University, Cardiff, Wales, United Kingdom

出版信息

Essays Biochem. 2019 Jul 3;63(2):237-266. doi: 10.1042/EBC20180042.

Abstract

Genetic code expansion allows unnatural (non-canonical) amino acid incorporation into proteins of interest by repurposing the cellular translation machinery. The development of this technique has enabled site-specific incorporation of many structurally and chemically diverse amino acids, facilitating a plethora of applications, including protein imaging, engineering, mechanistic and structural investigations, and functional regulation. Particularly, genetic code expansion provides great tools to study mammalian proteins, of which dysregulations often have important implications in health. In recent years, a series of methods has been developed to modulate protein function through genetically incorporated unnatural amino acids. In this review, we will first discuss the basic concept of genetic code expansion and give an up-to-date list of amino acids that can be incorporated into proteins in mammalian cells. We then focus on the use of unnatural amino acids to activate, inhibit, or reversibly modulate protein function by translational, optical or chemical control. The features of each approach will also be highlighted.

摘要

遗传密码扩展允许通过重新利用细胞翻译机制将非天然(非规范)氨基酸掺入感兴趣的蛋白质中。该技术的发展使许多结构和化学性质不同的氨基酸能够进行特异性掺入,从而促进了大量应用,包括蛋白质成像、工程、机制和结构研究以及功能调节。特别是,遗传密码扩展为研究哺乳动物蛋白质提供了很好的工具,这些蛋白质的失调通常对健康有重要影响。近年来,已经开发出一系列通过遗传掺入的非天然氨基酸来调节蛋白质功能的方法。在这篇综述中,我们将首先讨论遗传密码扩展的基本概念,并给出可在哺乳动物细胞中掺入蛋白质的氨基酸的最新列表。然后,我们将重点介绍使用非天然氨基酸通过翻译、光学或化学控制来激活、抑制或可逆调节蛋白质功能。每种方法的特点也将被强调。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c76c/6610526/62645b9e615c/ebc-63-ebc20180042-g1.jpg

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