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探索内源性无序如何介导蛋白质功能的物理基础。

Towards the physical basis of how intrinsic disorder mediates protein function.

机构信息

Department of Biochemistry, Kansas State University, Manhattan, KS 66506, USA.

出版信息

Arch Biochem Biophys. 2012 Aug 15;524(2):123-31. doi: 10.1016/j.abb.2012.04.024. Epub 2012 May 9.

Abstract

Intrinsically disordered proteins (IDPs) are an important class of functional proteins that is highly prevalent in biology and has broad association with human diseases. In contrast to structured proteins, free IDPs exist as heterogeneous and dynamical conformational ensembles under physiological conditions. Many concepts have been discussed on how such intrinsic disorder may provide crucial functional advantages, particularly in cellular signaling and regulation. Establishing the physical basis of these proposed phenomena requires not only detailed characterization of the disordered conformational ensembles, but also mechanistic understanding of the roles of various ensemble properties in IDP interaction and regulation. Here, we review the experimental and computational approaches that may be integrated to address many important challenges of establishing a "structural" basis of IDP function, and discuss some of the key emerging ideas on how the conformational ensembles of IDPs may mediate function, especially in coupled binding and folding interactions.

摘要

无规卷曲蛋白质(IDPs)是一类重要的具有生物学功能的蛋白质,在人类疾病中广泛存在。与结构蛋白不同,无规卷曲蛋白质在生理条件下以异质和动态的构象集合体存在。已经讨论了许多概念,探讨了这种内在无序性如何提供关键的功能优势,特别是在细胞信号转导和调节中。确定这些提出的现象的物理基础不仅需要对无规卷曲构象集合体进行详细的特征描述,还需要对各种集合体特性在 IDP 相互作用和调节中的作用有机制理解。在这里,我们回顾了可能整合的实验和计算方法,以解决确定 IDP 功能“结构”基础的许多重要挑战,并讨论了一些关于 IDP 构象集合体如何介导功能的关键新观点,特别是在偶联结合和折叠相互作用中。

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