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解析蛋白质磷酸化的作用:化学生物学工具包。

Dissecting the role of protein phosphorylation: a chemical biology toolbox.

机构信息

Department of Chemistry, Humboldt-Universität zu Berlin, Brook-Taylor-Str. 2, 12489 Berlin, Germany.

出版信息

Chem Soc Rev. 2022 Jul 4;51(13):5691-5730. doi: 10.1039/d1cs00991e.

Abstract

Protein phosphorylation is a crucial regulator of protein and cellular function, yet, despite identifying an enormous number of phosphorylation sites, the role of most is still unclear. Each phosphoform, the particular combination of phosphorylations, of a protein has distinct and diverse biological consequences. Aberrant phosphorylation is implicated in the development of many diseases. To investigate their function, access to defined protein phosphoforms is essential. Materials obtained from cells often are complex mixtures. Recombinant methods can provide access to defined phosphoforms if site-specifically acting kinases are known, but the methods fail to provide homogenous material when several amino acid side chains compete for phosphorylation. Chemical and chemoenzymatic synthesis has provided an invaluable toolbox to enable access to previously unreachable phosphoforms of proteins. In this review, we selected important tools that enable access to homogeneously phosphorylated protein and discuss examples that demonstrate how they can be applied. Firstly, we discuss the synthesis of phosphopeptides and proteins through chemical and enzymatic means and their advantages and limitations. Secondly, we showcase illustrative examples that applied these tools to answer biological questions pertaining to proteins involved in signal transduction, control of transcription, neurodegenerative diseases and aggregation, apoptosis and autophagy, and transmembrane proteins. We discuss the opportunities and challenges in the field.

摘要

蛋白质磷酸化是蛋白质和细胞功能的重要调节剂,尽管已经鉴定出大量的磷酸化位点,但大多数磷酸化位点的功能仍不清楚。蛋白质的每种磷酸化形式,即特定的磷酸化组合,都具有独特而多样的生物学后果。异常的磷酸化与许多疾病的发展有关。为了研究它们的功能,获得定义明确的蛋白质磷酸化形式是必不可少的。从细胞中获得的物质通常是复杂的混合物。如果已知特定作用的激酶,重组方法可以提供定义明确的磷酸化形式,但当几个氨基酸侧链竞争磷酸化时,这些方法无法提供同质的物质。化学和化学酶合成为获得以前无法获得的蛋白质磷酸化形式提供了宝贵的工具。在这篇综述中,我们选择了一些重要的工具来获得同质磷酸化的蛋白质,并讨论了它们的应用实例。首先,我们讨论了通过化学和酶法合成磷酸肽和蛋白质的方法,以及它们的优缺点。其次,我们展示了一些应用这些工具来回答与信号转导、转录控制、神经退行性疾病和聚集、细胞凋亡和自噬以及跨膜蛋白相关的生物学问题的例子。我们讨论了该领域的机遇和挑战。

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