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2
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Proc Natl Acad Sci U S A. 2019 Jun 18;116(25):12301-12310. doi: 10.1073/pnas.1818206116. Epub 2019 Jun 5.
3
Simulating Water Exchange to Buried Binding Sites.模拟水交换到埋藏的结合位点。
J Chem Theory Comput. 2019 Apr 9;15(4):2684-2691. doi: 10.1021/acs.jctc.8b01284. Epub 2019 Mar 13.
4
Modulation of Measles Virus N Interactions through Fuzziness and Sequence Features of Disordered Binding Sites.通过无序结合位点的模糊性和序列特征调节麻疹病毒 N 相互作用。
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5
Conformational preferences and phase behavior of intrinsically disordered low complexity sequences: insights from multiscale simulations.无规卷曲低复杂度序列的构象偏好和相行为:多尺度模拟的见解。
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GPU-Accelerated Molecular Dynamics and Free Energy Methods in Amber18: Performance Enhancements and New Features.GPU 加速的 Amber18 分子动力学和自由能方法:性能提升和新特性。
J Chem Inf Model. 2018 Oct 22;58(10):2043-2050. doi: 10.1021/acs.jcim.8b00462. Epub 2018 Sep 25.
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Developing a molecular dynamics force field for both folded and disordered protein states.为折叠和无序的蛋白质状态开发分子动力学力场。
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8
Modulation of Correlated Segment Fluctuations in IDPs upon Complex Formation as an Allosteric Regulatory Mechanism.构象变化对无规卷曲多肽形成复合物后相关片段波动的调控:一种变构调节机制。
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通过混合实验和计算方法剖析固有无序蛋白质的能量学。

Dissecting the Energetics of Intrinsically Disordered Proteins via a Hybrid Experimental and Computational Approach.

机构信息

Department of Chemistry , Stony Brook University , Stony Brook , New York 11794-3400 , United States.

Laufer Center for Physical and Quantitative Biology , Stony Brook University , Stony Brook , New York 11794-3400 , United States.

出版信息

J Phys Chem B. 2019 Dec 12;123(49):10394-10402. doi: 10.1021/acs.jpcb.9b08323. Epub 2019 Dec 3.

DOI:10.1021/acs.jpcb.9b08323
PMID:31702919
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7291390/
Abstract

Intrinsically disordered proteins (IDPs) play important roles in biology, but little is known about the energetics of their inter-residue interactions. Methods that have been successfully applied to analyze the energetics of globular proteins are not applicable to the fluctuating partially ordered ensembles populated by IDPs. A combined computational experimental strategy is introduced for analyzing the energetic role of individual residues in the free state of IDPs. The approach combines experimental measurements of the binding of wild-type and mutant IDPs to their partners with alchemical free energy calculations of the structured complexes. These data allow quantitative information to be deduced about the free state via a thermodynamic cycle. The approach is validated by the analysis of the effects of mutations upon the binding free energy of the ovomucoid inhibitor third binding domain to its partners and is applied to the C-terminal domain of the measles virus nucleoprotein, a 125-residue IDP involved in the RNA transcription and replication of measles virus. The analysis reveals significant inter-residue interactions in the unbound IDP and suggests a biological role for them. The work demonstrates that advances in force fields and computational hardware have now led to the point where it is possible to develop methods, which integrate experimental and computational techniques to reveal insights that cannot be studied using either technique alone.

摘要

无规卷曲蛋白质(IDPs)在生物学中发挥着重要作用,但人们对其残基间相互作用的能量学知之甚少。已成功应用于分析球状蛋白质能量学的方法不适用于 IDPs 所组成的波动的部分有序集合。本文提出了一种组合计算实验策略,用于分析 IDP 自由态中单个残基的能量作用。该方法将野生型和突变型 IDP 与它们的伴侣结合的实验测量与化学自由能计算相结合,用于结构复合物。这些数据允许通过热力学循环推断有关自由态的定量信息。该方法通过分析突变对卵类黏蛋白抑制剂第三结合域与伴侣结合自由能的影响得到验证,并应用于麻疹病毒核蛋白 C 末端结构域,这是一个由 125 个残基组成的 IDP,参与麻疹病毒的 RNA 转录和复制。分析表明,在未结合的 IDP 中存在显著的残基间相互作用,并暗示其具有生物学功能。这项工作表明,力场和计算硬件的进步现在已经使得有可能开发出将实验和计算技术集成的方法,从而揭示仅使用一种技术无法研究的见解。