Biochemical characterization of naturally occurring mutations in SARS-CoV-2 RNA-dependent RNA polymerase.

IF 4.5 3区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Protein Science Pub Date : 2024-09-01 DOI:10.1002/pro.5103
Matěj Danda, Anna Klimešová, Klára Kušková, Alžběta Dostálková, Aneta Pagáčová, Jan Prchal, Marina Kapisheva, Tomáš Ruml, Michaela Rumlová
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Abstract

Since the emergence of SARS-CoV-2, mutations in all subunits of the RNA-dependent RNA polymerase (RdRp) of the virus have been repeatedly reported. Although RdRp represents a primary target for antiviral drugs, experimental studies exploring the phenotypic effect of these mutations have been limited. This study focuses on the phenotypic effects of substitutions in the three RdRp subunits: nsp7, nsp8, and nsp12, selected based on their occurrence rate and potential impact. We employed nano-differential scanning fluorimetry and microscale thermophoresis to examine the impact of these mutations on protein stability and RdRp complex assembly. We observed diverse impacts; notably, a single mutation in nsp8 significantly increased its stability as evidenced by a 13°C increase in melting temperature, whereas certain mutations in nsp7 and nsp8 reduced their binding affinity to nsp12 during RdRp complex formation. Using a fluorometric enzymatic assay, we assessed the overall effect on RNA polymerase activity. We found that most of the examined mutations altered the polymerase activity, often as a direct result of changes in stability or affinity to the other components of the RdRp complex. Intriguingly, a combination of nsp8 A21V and nsp12 P323L mutations resulted in a 50% increase in polymerase activity. To our knowledge, this is the first biochemical study to demonstrate the impact of amino acid mutations across all components constituting the RdRp complex in emerging SARS-CoV-2 subvariants.

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SARS-CoV-2 RNA 依赖性 RNA 聚合酶自然发生突变的生化特征。
自 SARS-CoV-2 出现以来,病毒的 RNA 依赖性 RNA 聚合酶(RdRp)的所有亚基发生突变的报道屡见不鲜。尽管 RdRp 是抗病毒药物的主要靶点,但探索这些突变表型效应的实验研究却十分有限。本研究重点研究了三个 RdRp 亚基(nsp7、nsp8 和 nsp12)中突变的表型效应,这些突变是根据它们的发生率和潜在影响选出的。我们采用纳米差示扫描荧光测定法和微尺度热电泳技术来研究这些突变对蛋白质稳定性和 RdRp 复合物组装的影响。我们观察到了不同的影响;值得注意的是,nsp8 的单个突变显著提高了其稳定性,熔化温度提高了 13°C 就是证明,而 nsp7 和 nsp8 的某些突变则降低了它们在 RdRp 复合物形成过程中与 nsp12 的结合亲和力。我们使用荧光酶测定法评估了对 RNA 聚合酶活性的总体影响。我们发现,所研究的大多数突变都会改变聚合酶的活性,这往往是稳定性或与 RdRp 复合物其他成分的亲和性发生变化的直接结果。耐人寻味的是,nsp8 A21V 和 nsp12 P323L 突变的组合导致聚合酶活性增加了 50%。据我们所知,这是首次生化研究证明了氨基酸突变对新出现的 SARS-CoV-2 亚变体中构成 RdRp 复合物的所有成分的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Protein Science
Protein Science 生物-生化与分子生物学
CiteScore
12.40
自引率
1.20%
发文量
246
审稿时长
1 months
期刊介绍: Protein Science, the flagship journal of The Protein Society, is a publication that focuses on advancing fundamental knowledge in the field of protein molecules. The journal welcomes original reports and review articles that contribute to our understanding of protein function, structure, folding, design, and evolution. Additionally, Protein Science encourages papers that explore the applications of protein science in various areas such as therapeutics, protein-based biomaterials, bionanotechnology, synthetic biology, and bioelectronics. The journal accepts manuscript submissions in any suitable format for review, with the requirement of converting the manuscript to journal-style format only upon acceptance for publication. Protein Science is indexed and abstracted in numerous databases, including the Agricultural & Environmental Science Database (ProQuest), Biological Science Database (ProQuest), CAS: Chemical Abstracts Service (ACS), Embase (Elsevier), Health & Medical Collection (ProQuest), Health Research Premium Collection (ProQuest), Materials Science & Engineering Database (ProQuest), MEDLINE/PubMed (NLM), Natural Science Collection (ProQuest), and SciTech Premium Collection (ProQuest).
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