Folded domain charge properties influence the conformational behavior of disordered tails

IF 2.7 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Current Research in Structural Biology Pub Date : 2021-01-01 DOI:10.1016/j.crstbi.2021.08.002
Ishan Taneja , Alex S. Holehouse
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引用次数: 12

Abstract

Intrinsically disordered proteins and protein regions (IDRs) make up around 30% of the human proteome where they play essential roles in dictating and regulating many core biological processes. While IDRs are often studied as isolated domains, in naturally occurring proteins most IDRs are found adjacent to folded domains, where they exist as either N- or C-terminal tails or as linkers connecting two folded domains. Prior work has shown that charge properties of IDRs can influence their conformational behavior, both in isolation and in the context of folded domains. In contrast, the converse scenario is less well-explored: how do the charge properties of folded domains influence IDR conformational behavior? To answer this question, we combined a large-scale structural bioinformatics analysis with all-atom implicit solvent simulations of both rationally designed and naturally occurring proteins. Our results reveal three key takeaways. Firstly, the relative position and accessibility of charged residues across the surface of a folded domain can dictate IDR conformational behavior, overriding expectations based on net surface charge properties. Secondly, naturally occurring proteins possess multiple charge patches that are physically accessible to local IDRs. Finally, even modest changes in the local electrostatic environment of a folded domain can substantially modulate IDR-folded domain interactions. Taken together, our results suggest that folded domain surfaces can act as local determinants of IDR conformational behavior.

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折叠畴电荷性质影响无序尾的构象行为
内在无序蛋白质和蛋白质区域(IDRs)约占人类蛋白质组的30%,在决定和调节许多核心生物过程中起着至关重要的作用。虽然idr通常被研究为孤立的结构域,但在天然存在的蛋白质中,大多数idr被发现与折叠结构域相邻,在那里它们作为N端或c端尾部或作为连接两个折叠结构域的连接体存在。先前的研究表明,idr的电荷性质可以影响它们的构象行为,无论是在孤立的情况下还是在折叠结构域的情况下。相比之下,相反的情况则没有得到很好的探索:折叠畴的电荷性质如何影响IDR构象行为?为了回答这个问题,我们将大规模的结构生物信息学分析与全原子隐式溶剂模拟相结合,模拟了合理设计和自然产生的蛋白质。我们的研究结果揭示了三个关键结论。首先,电荷残基在折叠畴表面的相对位置和可及性可以决定IDR构象行为,超越基于净表面电荷性质的预期。其次,天然存在的蛋白质具有多个电荷补丁,这些电荷补丁可以被局部idr物理地访问。最后,即使在折叠畴的局部静电环境中发生适度的变化,也可以实质性地调制idr折叠畴的相互作用。综上所述,我们的研究结果表明,折叠区域表面可以作为IDR构象行为的局部决定因素。
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来源期刊
CiteScore
4.60
自引率
0.00%
发文量
33
审稿时长
104 days
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