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特定部位的点突变显著影响 SARS-CoV-2 的 nsp12-nsp8 界面的 RNA 聚合酶活性。

Point mutations at specific sites of the nsp12-nsp8 interface dramatically affect the RNA polymerization activity of SARS-CoV-2.

机构信息

Structural and Molecular Biology Department, Institut de Biologia Molecular de Barcelona, Consejo Superior de Investigaciones Científicas, Barcelona 08028, Spain.

Department of Molecular and Cell Biology, Centro Nacional de Biotecnología, Consejo Superior de Investigaciones Científicas, Madrid 28049, Spain.

出版信息

Proc Natl Acad Sci U S A. 2024 Jul 16;121(29):e2317977121. doi: 10.1073/pnas.2317977121. Epub 2024 Jul 11.

Abstract

In a recent characterization of the Severe Acute Respiratory Syndrome Coronavirus 2 (SARS-CoV-2) variability present in 30 diagnostic samples from patients of the first COVID-19 pandemic wave, 41 amino acid substitutions were documented in the RNA-dependent RNA polymerase (RdRp) nsp12. Eight substitutions were selected in this work to determine whether they had an impact on the RdRp activity of the SARS-CoV-2 nsp12-nsp8-nsp7 replication complex. Three of these substitutions were found around the polymerase central cavity, in the template entry channel (D499G and M668V), and within the motif B (V560A), and they showed polymerization rates similar to the wild type RdRp. The remaining five mutations (P323L, L372F, L372P, V373A, and L527H) were placed near the nsp12-nsp8 contact surface; residues L372, V373, and L527 participated in a large hydrophobic cluster involving contacts between two helices in the nsp12 fingers and the long α-helix of nsp8. The presence of any of these five amino acid substitutions resulted in important alterations in the RNA polymerization activity. Comparative primer elongation assays showed different behavior depending on the hydrophobicity of their side chains. The substitution of L by the bulkier F side chain at position 372 slightly promoted RdRp activity. However, this activity was dramatically reduced with the L372P, and L527H mutations, and to a lesser extent with V373A, all of which weaken the hydrophobic interactions within the cluster. Additional mutations, specifically designed to disrupt the nsp12-nsp8 interactions (nsp12-V330S, nsp12-V341S, and nsp8-R111A/D112A), also resulted in an impaired RdRp activity, further illustrating the importance of this contact interface in the regulation of RNA synthesis.

摘要

在最近对来自 COVID-19 大流行第一波的 30 个患者的诊断样本中发现的严重急性呼吸综合征冠状病毒 2(SARS-CoV-2)变异的特征描述中,在 RNA 依赖性 RNA 聚合酶(RdRp)nsp12 中记录了 41 个氨基酸取代。在这项工作中选择了 8 个取代,以确定它们是否对 SARS-CoV-2 nsp12-nsp8-nsp7 复制复合物的 RdRp 活性有影响。这三个取代位于聚合酶中心腔周围,在模板进入通道(D499G 和 M668V)内,以及在基序 B 内(V560A),它们显示出与野生型 RdRp 相似的聚合率。其余五个突变(P323L、L372F、L372P、V373A 和 L527H)位于 nsp12-nsp8 接触表面附近;残基 L372、V373 和 L527 参与了一个大的疏水区,涉及 nsp12 手指中的两个螺旋与 nsp8 的长α-螺旋之间的接触。这五个氨基酸取代中的任何一个的存在都会导致 RNA 聚合活性的重要改变。比较引物延伸分析显示,不同的取代物根据其侧链的疏水性表现出不同的行为。在位置 372 用较大的 F 侧链取代 L 稍微促进了 RdRp 活性。然而,这种活性在 L372P 和 L527H 突变时显著降低,并且在 V373A 时降低较少,所有这些突变都削弱了该簇内的疏水相互作用。另外的突变,特别是设计用于破坏 nsp12-nsp8 相互作用的突变(nsp12-V330S、nsp12-V341S 和 nsp8-R111A/D112A),也导致 RdRp 活性受损,进一步说明了该接触界面在 RNA 合成调控中的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8ece/11260105/ea13db76c542/pnas.2317977121fig01.jpg

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