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The importance of the compact disordered state in the fuzzy interactions between intrinsically disordered proteins

CTD公司 内在无序蛋白质 分子动力学 结构相似性 化学 物理 结晶学 化学物理 计算化学 生物化学 海洋学 地质学
作者
Dan Wang,Shaowen Wu,Dongdong Wang,Xingyu Song,Maohua Yang,Wolun Zhang,Shaohui Huang,Jingwei Weng,Zhijun Liu,Wenning Wang
出处
期刊:Chemical Science [The Royal Society of Chemistry]
卷期号:13 (8): 2363-2377 被引量:4
标识
DOI:10.1039/d1sc06825c
摘要

The intrinsically disordered C-terminal domain (CTD) of protein 4.1G is able to specifically bind a 26-residue intrinsically disordered region of NuMA, forming a dynamic fuzzy complex. As one of a few cases of extremely fuzzy interactions between two intrinsically disordered proteins/regions (IDPs/IDRs) without induced folding, the principle of the binding is unknown. Here, we combined experimental and computational methods to explore the detailed mechanism of the interaction between 4.1G-CTD and NuMA. MD simulations suggest that the kinetic hub states in the structure ensemble of 4.1G-CTD are favorable in the fuzzy complex. The feature of these hub states is that the binding 'hot spot' motifs βA and βB exhibit β strand propensities and are well packed to each other. The binding between 4.1G-CTD and NuMA is disrupted at low pH, which changes the intramolecular packing of 4.1G-CTD and weakens the packing between βA and βB motifs. Low pH conditions also lead to increased hydrodynamic radius and acceleration of backbone dynamics of 4.1G-CTD. All these results underscore the importance of tertiary structural arrangements and overall compactness of 4.1G-CTD in its binding to NuMA, i.e. the compact disordered state of 4.1G-CTD is crucial for binding. Different from the short linear motifs (SLiMs) that are often found to mediate IDP interactions, 4.1G-CTD functions as an intrinsically disordered domain (IDD), which is a functional and structural unit similar to conventional protein domains. This work sheds light on the molecular recognition mechanism of IDPs/IDRs and expands the conventional structure-function paradigm in protein biochemistry.

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