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通过超大化学空间的支架中心探索发现严重急性呼吸综合征冠状病毒2非结构蛋白14甲基转移酶(MTase)抑制剂

Discovery of SARS-CoV-2 Nsp14-Methyltransferase (MTase) Inhibitors by Harnessing Scaffold-Centric Exploration of the Ultra Large Chemical Space.

作者信息

Pal Sourav, Hanson Quinlin M, Ogden Sarah C, Lee Emily M, Martinez Natalia J, Zakharov Alexey V

机构信息

Division of Preclinical Innovation, National Center for Advancing Translational Sciences (NCATS), National Institutes of Health (NIH), Rockville, Maryland 20850, United States.

出版信息

ACS Pharmacol Transl Sci. 2025 Apr 25;8(5):1366-1400. doi: 10.1021/acsptsci.5c00111. eCollection 2025 May 9.

Abstract

The global impact of SARS-CoV-2 underscores the need for antiviral treatments beyond vaccines. This study targets Nsp14-MTase, a viral protein essential for replication. Initial quantitative high-throughput screening (qHTS) of ∼15,000 compounds from the selected NCATS in-house libraries identified 135 active hit molecules, reflecting a hit-rate of 1.04%. To enhance the search for promising antiviral agents, we expanded this screening campaign with two rounds of machine learning (ML)-based virtual screening of ∼130,000 compounds. The first iteration yielded 72 active compounds encompassing 27 chemotypes with an IC ranging from 1.45 μM to 33.27 μM, increasing the hit-rate 28-fold over the initial qHTS screen. Scaffold clustering of those hits revealed 27 chemotypes. The second iteration added 30 more hits (IC: 2.18 μM-30.79 μM) across 12 new chemotypes. Initial structure-activity relationship (SAR) exploration around selected chemotypes identified (IC: 0.41 μM) as the most potent hit. Hit-to-lead optimization using scaffold-centric exploration against the ultra large Enamine REAL Space (∼5.6 billion compounds) in HPC clusters identified 78 analogs, with 56 showing potent biochemical activity (IC: 0.12 μM-18.23 μM) and cellular activity (0.27 μM-23.07 μM) in fully infectious SARS-CoV-2 live virus assays.

摘要

严重急性呼吸综合征冠状病毒2(SARS-CoV-2)的全球影响凸显了除疫苗之外对抗病毒治疗的需求。本研究以Nsp14-甲基转移酶为靶点,这是一种病毒复制所必需的蛋白质。对从美国国立转化医学推进中心(NCATS)内部选定文库中选取的约15000种化合物进行初步定量高通量筛选(qHTS),确定了135个活性命中分子,命中率为1.04%。为了加强对有前景的抗病毒药物的搜寻,我们通过对约130000种化合物进行两轮基于机器学习(ML)的虚拟筛选,扩大了这一筛选活动。第一轮筛选产生了72种活性化合物,涵盖27种化学型,其半数抑制浓度(IC)范围为1.45 μM至33.27 μM,命中率比最初的qHTS筛选提高了28倍。对这些命中化合物进行骨架聚类,揭示了27种化学型。第二轮筛选又增加了30个命中化合物(IC:2.18 μM - 30.79 μM),分布在12种新的化学型中。围绕选定化学型进行初步的构效关系(SAR)探索,确定(IC:0.41 μM)为最有效的命中化合物。在高性能计算(HPC)集群中,利用以骨架为中心的探索方法对超大型Enamine REAL Space(约56亿种化合物)进行从命中化合物到先导化合物的优化,确定了78种类似物,其中56种在完全感染性的SARS-CoV-2活病毒试验中显示出强效的生化活性(IC:0.12 μM - 18.23 μM)和细胞活性(0.27 μM - 23.07 μM)。

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本文引用的文献

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Rational Design of Highly Potent SARS-CoV-2 nsp14 Methyltransferase Inhibitors.强效 SARS-CoV-2 nsp14 甲基转移酶抑制剂的合理设计
ACS Omega. 2023 Jul 21;8(30):27410-27418. doi: 10.1021/acsomega.3c02815. eCollection 2023 Aug 1.

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