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计算补偿性突变发现方法:预测 PARP1 变异体拯救突变。

Computational compensatory mutation discovery approach: Predicting a PARP1 variant rescue mutation.

机构信息

Department of Chemistry, University of North Texas, Denton, Texas.

Department of Biological Sciences, The University of Texas at Dallas, Richardson, Texas; Department of Bioinformatics and Computational Biology, The University of Texas MD Anderson Cancer Center, Houston, Texas.

出版信息

Biophys J. 2022 Oct 4;121(19):3663-3673. doi: 10.1016/j.bpj.2022.05.036. Epub 2022 May 30.

Abstract

The prediction of protein mutations that affect function may be exploited for multiple uses. In the context of disease variants, the prediction of compensatory mutations that reestablish functional phenotypes could aid in the development of genetic therapies. In this work, we present an integrated approach that combines coevolutionary analysis and molecular dynamics (MD) simulations to discover functional compensatory mutations. This approach is employed to investigate possible rescue mutations of a poly(ADP-ribose) polymerase 1 (PARP1) variant, PARP1 V762A, associated with lung cancer and follicular lymphoma. MD simulations show PARP1 V762A exhibits noticeable changes in structural and dynamical behavior compared with wild-type (WT) PARP1. Our integrated approach predicts A755E as a possible compensatory mutation based on coevolutionary information, and molecular simulations indicate that the PARP1 A755E/V762A double mutant exhibits similar structural and dynamical behavior to WT PARP1. Our methodology can be broadly applied to a large number of systems where single-nucleotide polymorphisms have been identified as connected to disease and can shed light on the biophysical effects of such changes as well as provide a way to discover potential mutants that could restore WT-like functionality. This can, in turn, be further utilized in the design of molecular therapeutics that aim to mimic such compensatory effect.

摘要

预测影响功能的蛋白质突变可用于多种用途。在疾病变异的情况下,预测可恢复功能表型的补偿性突变有助于开发遗传疗法。在这项工作中,我们提出了一种综合方法,将共进化分析和分子动力学(MD)模拟相结合,以发现功能补偿性突变。该方法用于研究与肺癌和滤泡性淋巴瘤相关的多聚(ADP-核糖)聚合酶 1(PARP1)变体 PARP1 V762A 的可能挽救突变。MD 模拟表明,与野生型(WT)PARP1 相比,PARP1 V762A 表现出明显的结构和动力学行为变化。我们的综合方法基于共进化信息预测 A755E 为可能的补偿突变,分子模拟表明 PARP1 A755E/V762A 双突变体表现出与 WT PARP1 相似的结构和动力学行为。我们的方法可以广泛应用于大量已被确定与疾病相关的单核苷酸多态性的系统中,可以揭示这些变化的生物物理效应,并提供发现可能恢复 WT 样功能的潜在突变体的方法。这反过来又可以进一步用于设计旨在模拟这种补偿效应的分子治疗。

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