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p75 神经营养因子受体的死亡结构域:细胞内信号枢纽的结构视角。

Death domain of p75 neurotrophin receptor: a structural perspective on an intracellular signalling hub.

机构信息

School of Life Sciences, Tianjin University, Tianjin, 300072, People's Republic of China.

Department of Physiology, National University of Singapore, 117456, Singapore.

出版信息

Biol Rev Camb Philos Soc. 2019 Aug;94(4):1282-1293. doi: 10.1111/brv.12502. Epub 2019 Feb 14.

Abstract

The death domain (DD) is a globular protein motif with a signature feature of an all-helical Greek-key motif. It is a primary mediator of a variety of biological activities, including apoptosis, cell survival and cytoskeletal changes, which are related to many neurodegenerative diseases, neurotrauma, and cancers. DDs exist in a wide range of signalling proteins including p75 neurotrophin receptor (p75 ), a member of the tumour necrosis factor receptor superfamily. The specific signalling mediated by p75 in a given cell depends on the type of ligand engaging the extracellular domain and the recruitment of cytosolic interactors to the intracellular domain, especially the DD, of the receptor. In solution, the p75 -DDs mainly form a symmetric non-covalent homodimer. In response to extracellular signals, conformational changes in the p75 extracellular domain (ECD) propagate to the p75 -DD through the disulfide-bonded transmembrane domain (TMD) and destabilize the p75 -DD homodimer, leading to protomer separation and exposure of binding sites on the DD surface. In this review, we focus on recent advances in the study of the structural mechanism of p75 -DD signalling through recruitment of diverse intracellular interactors for the regulation and control of diverse functional outputs.

摘要

死亡结构域(DD)是一种球形蛋白基序,其特征是全螺旋希腊钥匙基序。它是多种生物活性的主要介质,包括细胞凋亡、细胞存活和细胞骨架变化,这些与许多神经退行性疾病、神经创伤和癌症有关。DD 存在于广泛的信号蛋白中,包括 p75 神经生长因子受体(p75),它是肿瘤坏死因子受体超家族的成员。特定细胞中 p75 介导的特定信号取决于与细胞外结构域结合的配体类型以及胞质相互作用蛋白向受体细胞内结构域(特别是 DD)的募集。在溶液中,p75-DD 主要形成对称的非共价同源二聚体。响应细胞外信号,p75 细胞外结构域(ECD)的构象变化通过二硫键连接的跨膜结构域(TMD)传播到 p75-DD,破坏 p75-DD 同源二聚体,导致单体分离并暴露 DD 表面的结合位点。在这篇综述中,我们重点介绍了通过募集不同的胞质相互作用蛋白来研究 p75-DD 信号转导的结构机制方面的最新进展,以调节和控制不同的功能输出。

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