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钙调神经磷酸酶的协同自抑制和多级激活机制

Cooperative autoinhibition and multi-level activation mechanisms of calcineurin.

作者信息

Li Sheng-Jie, Wang Jue, Ma Lei, Lu Chang, Wang Jie, Wu Jia-Wei, Wang Zhi-Xin

机构信息

MOE Key Laboratory of Protein Science, School of Life Sciences, Tsinghua University, Beijing 100084, China.

Institute of Biophysics, Chinese Academy of Sciences, Beijing 100101, China.

出版信息

Cell Res. 2016 Mar;26(3):336-49. doi: 10.1038/cr.2016.14. Epub 2016 Jan 22.

Abstract

The Ca(2+)/calmodulin-dependent protein phosphatase calcineurin (CN), a heterodimer composed of a catalytic subunit A and an essential regulatory subunit B, plays critical functions in various cellular processes such as cardiac hypertrophy and T cell activation. It is the target of the most widely used immunosuppressants for transplantation, tacrolimus (FK506) and cyclosporin A. However, the structure of a large part of the CNA regulatory region remains to be determined, and there has been considerable debate concerning the regulation of CN activity. Here, we report the crystal structure of full-length CN (β isoform), which revealed a novel autoinhibitory segment (AIS) in addition to the well-known autoinhibitory domain (AID). The AIS nestles in a hydrophobic intersubunit groove, which overlaps the recognition site for substrates and immunosuppressant-immunophilin complexes. Indeed, disruption of this AIS interaction results in partial stimulation of CN activity. More importantly, our biochemical studies demonstrate that calmodulin does not remove AID from the active site, but only regulates the orientation of AID with respect to the catalytic core, causing incomplete activation of CN. Our findings challenge the current model for CN activation, and provide a better understanding of molecular mechanisms of CN activity regulation.

摘要

钙调神经磷酸酶(CN)是一种依赖于Ca(2+)/钙调蛋白的蛋白磷酸酶,由催化亚基A和必需的调节亚基B组成的异二聚体,在各种细胞过程中发挥关键作用,如心脏肥大和T细胞活化。它是移植中使用最广泛的免疫抑制剂他克莫司(FK506)和环孢素A的作用靶点。然而,CNA调节区域的大部分结构仍有待确定,并且关于CN活性的调节存在相当多的争论。在这里,我们报告了全长CN(β亚型)的晶体结构,该结构除了揭示了众所周知的自抑制结构域(AID)外,还发现了一个新的自抑制片段(AIS)。AIS位于一个疏水的亚基间凹槽中,该凹槽与底物和免疫抑制剂-亲免蛋白复合物的识别位点重叠。事实上,这种AIS相互作用的破坏会导致CN活性的部分刺激。更重要的是,我们的生化研究表明,钙调蛋白不会从活性位点去除AID,而只是调节AID相对于催化核心的方向,导致CN的不完全激活。我们的发现挑战了目前关于CN激活的模型,并为更好地理解CN活性调节的分子机制提供了依据。

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