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SH3 结构域中酪氨酸 90 的磷酸化是控制 Src 激酶的新调节开关。

Phosphorylation of tyrosine 90 in SH3 domain is a new regulatory switch controlling Src kinase.

机构信息

Department of Cell Biology, BIOCEV, Faculty of Science, Charles University, Vestec, Czech Republic.

Institute of Organic Chemistry and Biochemistry, Czech Academy of Sciences, Prague, Czech Republic.

出版信息

Elife. 2023 Jul 10;12:e82428. doi: 10.7554/eLife.82428.

Abstract

The activation of Src kinase in cells is strictly controlled by intramolecular inhibitory interactions mediated by SH3 and SH2 domains. They impose structural constraints on the kinase domain holding it in a catalytically non-permissive state. The transition between inactive and active conformation is known to be largely regulated by the phosphorylation state of key tyrosines 416 and 527. Here, we identified that phosphorylation of tyrosine 90 reduces binding affinity of the SH3 domain to its interacting partners, opens the Src structure, and renders Src catalytically active. This is accompanied by an increased affinity to the plasma membrane, decreased membrane motility, and slower diffusion from focal adhesions. Phosphorylation of tyrosine 90 controlling SH3-medited intramolecular inhibitory interaction, analogical to tyrosine 527 regulating SH2-C-terminus bond, enables SH3 and SH2 domains to serve as cooperative but independent regulatory elements. This mechanism allows Src to adopt several distinct conformations of varying catalytic activities and interacting properties, enabling it to operate not as a simple switch but as a tunable regulator functioning as a signalling hub in a variety of cellular processes.

摘要

细胞中Src 激酶的激活受到 SH3 和 SH2 结构域介导的分子内抑制相互作用的严格控制。它们通过将激酶结构域保持在催化非许可状态来对其施加结构约束。已知非活性和活性构象之间的转变主要受关键酪氨酸残基 416 和 527 的磷酸化状态调节。在这里,我们发现酪氨酸 90 的磷酸化降低了 SH3 结构域与其相互作用伙伴的结合亲和力,打开了 Src 结构,并使 Src 具有催化活性。这伴随着与质膜的亲和力增加,膜运动性降低,以及从焦点黏附物的扩散速度减慢。磷酸化酪氨酸 90 控制 SH3 介导的分子内抑制相互作用,类似于酪氨酸 527 调节 SH2-C 末端键,使得 SH3 和 SH2 结构域能够作为协同但独立的调节元件发挥作用。这种机制允许 Src 采用几种不同的构象,具有不同的催化活性和相互作用特性,使其不仅作为简单的开关,而且作为一个可调谐的调节剂,作为各种细胞过程中的信号枢纽发挥作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d8d6/10361714/0111aaccd508/elife-82428-fig1.jpg

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