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通过运动学方法对严重急性呼吸综合征冠状病毒2型主要蛋白酶进行突变分析。

SARS-CoV-2 main protease mutation analysis via a kinematic method.

作者信息

Chen Xiyu, Leyendecker Sigrid, van den Bedem Henry

机构信息

Department of Mechanical Engineering, Institute of Applied Dynamics, Friedrich-Alexander-Universität Erlangen-Nürnberg, Erlangen, Germany.

Department of Bioengineering and Therapeutic Sciences, University of California, San Francisco, California, USA.

出版信息

Proteins. 2023 Nov;91(11):1496-1509. doi: 10.1002/prot.26543. Epub 2023 Jul 5.

DOI:10.1002/prot.26543
PMID:37408369
Abstract

The Severe Acute Respiratory Syndrome CoronaVirus 2 (SARS-CoV-2) is the virus responsible for the COVID-19 pandemic. COVID-19 continues to cause millions of deaths globally in part due to immune-evading mutations. SARS-CoV-2 main protease (Mpro) is an important enzyme for viral replication and potentially an effective drug target. Mutations affect the dynamics of enzymes and thereby their activity and ability to bind ligands. Here, we use kinematic flexibility analysis (KFA) to identify how mutations and ligand binding changes the conformational flexibility of Mpro. KFA decomposes macromolecules into regions of different flexibility near-instantly from a static structure, allowing conformational dynamics analysis at scale. Altogether, we analyzed 47 mutation sites across 69 Mpro-ligand complexes resulting in more than 3300 different structures which includes 69 mutated structures with all 47 sites mutated simultaneously and 3243 single residue mutated structures. We found that mutations generally increased the conformational flexibility of the protein. Understanding the impact of mutations on the flexibility of Mpro is essential for identifying potential drug targets in the treatment of SARS-CoV-2. Further studies in this area can offer valuable insights into the mechanisms of molecular recognition.

摘要

严重急性呼吸综合征冠状病毒2(SARS-CoV-2)是引发新冠疫情的病毒。新冠疫情在全球范围内持续导致数百万人死亡,部分原因是病毒发生了免疫逃逸突变。SARS-CoV-2主要蛋白酶(Mpro)是病毒复制的重要酶,可能是一个有效的药物靶点。突变会影响酶的动力学,进而影响其活性和结合配体的能力。在此,我们使用运动学灵活性分析(KFA)来确定突变和配体结合如何改变Mpro的构象灵活性。KFA能从静态结构近乎即时地将大分子分解为具有不同灵活性的区域,从而实现大规模的构象动力学分析。我们总共分析了69个Mpro-配体复合物中的47个突变位点,得到了3300多个不同结构,其中包括69个所有47个位点同时突变的结构和3243个单残基突变结构。我们发现,突变通常会增加蛋白质的构象灵活性。了解突变对Mpro灵活性的影响对于确定治疗SARS-CoV-2的潜在药物靶点至关重要。该领域的进一步研究可为分子识别机制提供有价值的见解。

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