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ED-Eya2 的晶体结构:揭示其作为蛋白酪氨酸磷酸酶和转录因子的双重作用。

Crystal structure of ED-Eya2: insight into dual roles as a protein tyrosine phosphatase and a transcription factor.

机构信息

Medical Proteomics Research Center, Korea Research Institute of Bioscience and Biotechnology, 52 Eoeun-Dong, Yuseong-Gu, Daejeon, 305-600, Korea.

出版信息

FASEB J. 2010 Feb;24(2):560-9. doi: 10.1096/fj.09-143891. Epub 2009 Oct 26.

Abstract

Eya proteins are transcription factors that play pivotal roles in organ formation during development by mediating interactions between Sine Oculis (SO) and Dachshund (DAC). Remarkably, the transcriptional activity of Eya proteins is regulated by a dephosphorylating activity within its Eya domain (ED). However, the molecular basis for the link between catalytic and transcriptional activities remains unclear. Here we report the first description of the crystal structure of the ED of human Eya2 (ED-Eya2), determined at 2.4-A resolution. In stark contrast to other members of the haloacid dehalogenase (HAD) family to which ED-Eya2 belongs, the helix-bundle motif (HBM) is elongated along the back of the catalytic site. This not only results in a structure that accommodates large protein substrates but also positions the catalytic and the SO-interacting sites on opposite faces, which suggests that SO binding is not directly affected by catalytic function. Based on the observation that the DAC-binding site is located between the catalytic core and SO binding sites within ED-Eya2, we propose that catalytic activity can be translated to SO binding through DAC, which acts as a transcriptional switch. We also captured at two stages of reaction cycles-acyl-phosphate intermediate and transition state of hydrolysis step, which provided a detailed view of reaction mechanism. The ED-Eya2 structure defined here serves as a model for other members of the Eya family and provides a framework for understanding the role of Eya phosphatase mutations in disease.

摘要

Eya 蛋白是转录因子,通过介导 Sine Oculis(SO)和 Dachshund(DAC)之间的相互作用,在发育过程中对器官形成起着关键作用。值得注意的是,Eya 蛋白的转录活性受其 Eya 结构域(ED)内去磷酸化活性的调节。然而,催化和转录活性之间的联系的分子基础仍不清楚。在这里,我们首次描述了人 Eya2(ED-Eya2)的 ED 的晶体结构,分辨率为 2.4-A。与 ED-Eya2 所属的卤酸脱卤酶(HAD)家族的其他成员形成鲜明对比的是,螺旋束基序(HBM)沿着催化位点的背面延伸。这不仅导致了一种能够容纳大蛋白底物的结构,而且将催化和与 SO 相互作用的位点定位在相对的面上,这表明 SO 结合不受催化功能的直接影响。基于观察到 DAC 结合位点位于 ED-Eya2 内的催化核心和 SO 结合位点之间,我们提出催化活性可以通过 DAC 转化为 SO 结合,DAC 充当转录开关。我们还捕获了反应循环的两个阶段——酰基-磷酸中间态和水解步骤的过渡态,这提供了反应机制的详细视图。这里定义的 ED-Eya2 结构为 Eya 家族的其他成员提供了模型,并为理解 Eya 磷酸酶突变在疾病中的作用提供了框架。

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