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酪氨酸磷酸化后人类淋巴细胞激酶Lck激活的结构基础。

Structural basis for activation of human lymphocyte kinase Lck upon tyrosine phosphorylation.

作者信息

Yamaguchi H, Hendrickson W A

机构信息

Department of Biochemistry and Molecular Biophysics, Columbia University, New York 10032, USA.

出版信息

Nature. 1996 Dec 5;384(6608):484-9. doi: 10.1038/384484a0.

Abstract

Regulation through phosphorylation is a characteristic of signalling pathways and the lymphocyte kinase Lck (p56lck) both performs phosphorylation and is affected by it. Lck is a Src-family tyrosine kinase expressed in T lymphocytes, where it participates in the cellular immune response. Like all Src homologues, it comprises SH3, SH2 and kinase domains. Lck associates through its distinctive amino-terminal segment with the cytoplasmic tails of either T-cell co-receptor, CD4 or CD8-alpha. Activated Lck phosphorylates T-cell receptor zeta-chains, which then recruit the ZAP70 kinase to promote T-cell activation. Lck is activated by autophosphorylation at Tyr 394 in the activation loop and it is inactive when Tyr 505 near the carboxy terminus is phosphorylated and interacts with its own SH2 domain. Here we report the crystal structure of the Lck tyrosine kinase domain (LCKK) in its activated state at 1.7 A resolution. The structure reveals how a phosphoryl group at Tyr 394 generates a competent active site. Comparisons with other kinase structures indicate that tyrosine phophophorylation and ligand binding may in general elicit two distinct hinge-like movements between the kinase subdomains. From modelling studies, we suggest a basis for inhibition by phosphorylation at Tyr 505.

摘要

通过磷酸化进行调控是信号通路的一个特征,淋巴细胞激酶Lck(p56lck)既执行磷酸化作用,也受其影响。Lck是一种在T淋巴细胞中表达的Src家族酪氨酸激酶,它参与细胞免疫反应。与所有Src同源物一样,它包含SH3、SH2和激酶结构域。Lck通过其独特的氨基末端片段与T细胞共受体CD4或CD8-α的胞质尾巴结合。活化的Lck使T细胞受体ζ链磷酸化,然后募集ZAP70激酶以促进T细胞活化。Lck在激活环中的酪氨酸394处通过自身磷酸化而被激活,当羧基末端附近的酪氨酸505被磷酸化并与其自身的SH2结构域相互作用时,它处于无活性状态。在此,我们报告了处于活化状态的Lck酪氨酸激酶结构域(LCKK)的晶体结构,分辨率为1.7埃。该结构揭示了酪氨酸394处的磷酸基团如何产生一个有效的活性位点。与其他激酶结构的比较表明,酪氨酸磷酸化和配体结合通常可能在激酶亚结构域之间引发两种不同的类似铰链的运动。通过建模研究,我们提出了酪氨酸505处磷酸化抑制作用的基础。

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