来自 SARS-CoV-2 的 nsp9 与 nsp12 相互作用的生化和生物物理分析--对未来药物发现工作的启示。

IF 4.3 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC ACS Applied Electronic Materials Pub Date : 2024-11-01 Epub Date: 2024-07-03 DOI:10.1002/prot.26725
David L Baker, Bing Wang, Lorna E Wilkinson-White, Serene El-Kamand, Thomas A Allport, Sandro F Ataide, Ann H Kwan, Irina Artsimovitch, Liza Cubeddu, Roland Gamsjaeger
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引用次数: 0

摘要

正在全球大流行的冠状病毒 2019(COVID-19)疾病是由 SARS-CoV-2 病毒引起的,目前很少有高效的抗病毒治疗方法。在感染过程中,负责病毒 RNA 复制和转录的机器由几种重要的蛋白质组成。其中两种是病毒聚合酶催化亚基 nsp12 和 nsp9,nsp9 是 nsp12 的辅助因子,参与病毒 RNA 的封顶和引物。虽然最近的一些研究已经确定了 nsp9 与 nsp12 在 RNA 加帽过程中相互作用的结构细节,但目前能获得的生物化学或生物物理细节却很少。在这项研究中,我们结合使用了表面等离子体共振(SPR)实验、尺寸排阻色谱(SEC)实验和生化测定法,以确定对 nsp12 结合和 RNA 化至关重要的特定 nsp9 残基,这两种作用对于 RNA 的封顶过程都至关重要。我们的数据表明,nsp9 的二聚化不太可能在病毒中发挥重要的功能作用。我们证实,最近发现的一组抗病毒肽通过与 nsp9 特异性结合,抑制了 nsp9-nsp12 的相互作用;但是,我们发现这些肽并不影响 RNAylation。总之,我们的研究结果对未来抗击 SARS-CoV-2 和任何新出现的冠状病毒的药物发现工作具有重要意义。
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A Biochemical and Biophysical Analysis of the Interaction of nsp9 with nsp12 from SARS-CoV-2-Implications for Future Drug Discovery Efforts.

The ongoing global pandemic of the coronavirus 2019 (COVID-19) disease is caused by the virus SARS-CoV-2, with very few highly effective antiviral treatments currently available. The machinery responsible for the replication and transcription of viral RNA during infection is made up of several important proteins. Two of these are nsp12, the catalytic subunit of the viral polymerase, and nsp9, a cofactor of nsp12 involved in the capping and priming of viral RNA. While several recent studies have determined the structural details of the interaction of nsp9 with nsp12 in the context of RNA capping, very few biochemical or biophysical details are currently available. In this study, we have used a combination of surface plasmon resonance (SPR) experiments, size exclusion chromatography (SEC) experiments, and biochemical assays to identify specific nsp9 residues that are critical for nsp12 binding as well as RNAylation, both of which are essential for the RNA capping process. Our data indicate that nsp9 dimerization is unlikely to play a significant functional role in the virus. We confirm that a set of recently discovered antiviral peptides inhibit nsp9-nsp12 interaction by specifically binding to nsp9; however, we find that these peptides do not impact RNAylation. In summary, our results have important implications for future drug discovery efforts to combat SARS-CoV-2 and any newly emerging coronaviruses.

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