A New Fragment-Based Pharmacophore Virtual Screening Workflow Identifies Potent Inhibitors of SARS-CoV-2 NSP13 Helicase.

A New Fragment-Based Pharmacophore Virtual Screening Workflow Identifies Potent Inhibitors of SARS-CoV-2 NSP13 Helicase.

Publication date: Sep 05, 2025

Herein we report the in silico discovery of 13 novel micromolar potent inhibitors of the SARS-CoV-2 NSP13 helicase validated in cellular antiviral and biophysical ThermoFluor assays. The compounds, discovered using a novel fragment-based pharmacophore virtual screening workflow named FragmentScout, enable the advancement of novel antiviral agents. FragmentScout uses publicly accessible structural data of the SARS-CoV-2 NSP13 helicase, which was previously generated at the Diamond LightSource by XChem high-throughput crystallographic fragment screening. The workflow generates a joint pharmacophore query for each binding site, thereby aggregating the pharmacophore feature information present in each experimental fragment pose. The joint pharmacophore query is then used to search 3D conformational databases using the Inte:ligand LigandScout XT software. The FragmentScout in silico workflow offers a novel tool for identifying micromolar hits from millimolar fragments in fragment-based lead discovery. It is anticipated that this workflow will enhance systematic data mining of the growing collection of XChem datasets.

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Concepts Keywords
Antiviral Antiviral Agents
Diamond Antiviral Agents
Lightsource Binding Sites
Nsp13 broad‐spectrum antiviral
Pharmacophore Drug Evaluation, Preclinical
Enzyme Inhibitors
Enzyme Inhibitors
fragment‐based
FragmentScout
Humans
Ligands
Ligands
Methyltransferases
Methyltransferases
Nsp13 protein, SARS-CoV
Pharmacophore
RNA Helicases
RNA Helicases
SARS-CoV-2
Viral Nonstructural Proteins
Viral Nonstructural Proteins
virtual screening
Workflow

Semantics

Type Source Name
disease IDO site
drug DRUGBANK Coenzyme M
disease IDO process
disease IDO quality
disease IDO facility
disease IDO assay
pathway REACTOME Reproduction
disease MESH COVID 19 pandemic
disease IDO replication
drug DRUGBANK ATP
pathway KEGG Viral replication
drug DRUGBANK Trestolone
disease IDO algorithm
drug DRUGBANK Water

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