A Repurposed Drug Interferes with Nucleic Acid to Inhibit the Dual Activities of Coronavirus Nsp13

IF 3.5 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY ACS Chemical Biology Pub Date : 2024-07-09 DOI:10.1021/acschembio.4c00244
Nathan Soper, Isabelle Yardumian, Eric Chen, Chao Yang, Samantha Ciervo, Aaron L. Oom, Ludovic Desvignes, Mark J. Mulligan, Yingkai Zhang* and Tania J. Lupoli*, 
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Abstract

The recent pandemic caused by severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) highlighted a critical need to discover more effective antivirals. While therapeutics for SARS-CoV-2 exist, its nonstructural protein 13 (Nsp13) remains a clinically untapped target. Nsp13 is a helicase responsible for unwinding double-stranded RNA during viral replication and is essential for propagation. Like other helicases, Nsp13 has two active sites: a nucleotide binding site that hydrolyzes nucleoside triphosphates (NTPs) and a nucleic acid binding channel that unwinds double-stranded RNA or DNA. Targeting viral helicases with small molecules, as well as the identification of ligand binding pockets, have been ongoing challenges, partly due to the flexible nature of these proteins. Here, we use a virtual screen to identify ligands of Nsp13 from a collection of clinically used drugs. We find that a known ion channel inhibitor, IOWH-032, inhibits the dual ATPase and helicase activities of SARS-CoV-2 Nsp13 at low micromolar concentrations. Kinetic and binding assays, along with computational and mutational analyses, indicate that IOWH-032 interacts with the RNA binding interface, leading to displacement of nucleic acid substrate, but not bound ATP. Evaluation of IOWH-032 with microbial helicases from other superfamilies reveals that it is selective for coronavirus Nsp13. Furthermore, it remains active against mutants representative of observed SARS-CoV-2 variants. Overall, this work provides a new inhibitor for Nsp13 and provides a rationale for a recent observation that IOWH-032 lowers SARS-CoV-2 viral loads in human cells, setting the stage for the discovery of other potent viral helicase modulators.

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一种可干扰核酸以抑制冠状病毒 Nsp13 双重活性的重塑药物。
最近由严重急性呼吸系统综合征冠状病毒 2(SARS-CoV-2)引起的大流行凸显了发现更有效抗病毒药物的迫切需要。虽然已有针对 SARS-CoV-2 的疗法,但其非结构蛋白 13(Nsp13)仍是临床上尚未开发的靶点。Nsp13 是一种螺旋酶,负责在病毒复制过程中解开双链 RNA,对病毒的传播至关重要。与其他螺旋酶一样,Nsp13 也有两个活性位点:一个是核苷酸结合位点,用于水解三磷酸核苷(NTP);另一个是核酸结合通道,用于解开双链 RNA 或 DNA。用小分子靶向病毒螺旋酶以及鉴定配体结合位点一直是个难题,部分原因是这些蛋白的灵活性。在这里,我们利用虚拟筛选技术从一系列临床用药中找出了 Nsp13 的配体。我们发现,已知的离子通道抑制剂 IOWH-032 在低微摩尔浓度下可抑制 SARS-CoV-2 Nsp13 的 ATPase 和螺旋酶双重活性。动力学和结合试验以及计算和突变分析表明,IOWH-032 与 RNA 结合界面相互作用,导致核酸底物位移,但不导致结合 ATP 位移。将 IOWH-032 与其他超家族的微生物螺旋酶进行评估后发现,它对冠状病毒 Nsp13 具有选择性。此外,它对已观察到的 SARS-CoV-2 变异株的突变体仍有活性。总之,这项工作为 Nsp13 提供了一种新的抑制剂,并为最近观察到的 IOWH-032 降低人类细胞中 SARS-CoV-2 病毒载量提供了依据,为发现其他强效病毒螺旋酶调节剂创造了条件。
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来源期刊
ACS Chemical Biology
ACS Chemical Biology 生物-生化与分子生物学
CiteScore
7.50
自引率
5.00%
发文量
353
审稿时长
3.3 months
期刊介绍: ACS Chemical Biology provides an international forum for the rapid communication of research that broadly embraces the interface between chemistry and biology. The journal also serves as a forum to facilitate the communication between biologists and chemists that will translate into new research opportunities and discoveries. Results will be published in which molecular reasoning has been used to probe questions through in vitro investigations, cell biological methods, or organismic studies. We welcome mechanistic studies on proteins, nucleic acids, sugars, lipids, and nonbiological polymers. The journal serves a large scientific community, exploring cellular function from both chemical and biological perspectives. It is understood that submitted work is based upon original results and has not been published previously.
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