Artikel

Identification of Potential Inhibitors of the SARS‐CoV‐2 NSP13 Helicase via Structure‐Based Ligand Design, Molecular Docking and Nonequilibrium Alchemical Simulations

26.03.2024

The channel for RNA unwinding of NSP13 SARS-CoV-2 helicase is highly conserved in alpha and beta mammals coronavirus. Exploiting a funnel-like computational pipeline, we identified several micromolar or submicromolar NSP13 ligands blocking the central channel of NSP13. These compounds could potentially be good candidates for the development of a broad-spectrum drug for coronavirus infections.


Abstract

We have assembled a computational pipeline based on virtual screening, docking techniques, and nonequilibrium molecular dynamics simulations, with the goal of identifying possible inhibitors of the SARS-CoV-2 NSP13 helicase, catalyzing by ATP hydrolysis the unwinding of double or single-stranded RNA in the viral replication process inside the host cell. The druggable sites for broad-spectrum inhibitors are represented by the RNA binding sites at the 5’ entrance and 3’ exit of the central channel, a structural motif that is highly conserved across coronaviruses. Potential binders were first generated using structure-based ligand techniques. Their potency was estimated by using four popular docking scoring functions. Common docking hits for NSP13 were finally tested using advanced nonequilibrium alchemical techniques for binding free energy calculations on a high-performing parallel cluster. Four potential NSP13 inhibitors with potency from submicrimolar to nanomolar were finally identified.

Verwandte Artikel
Identification of Potential Inhibitors of the SARS‐CoV‐2 NSP13 Helicase via Structure‐Based Ligand Design, Molecular Docking and Nonequilibrium Alchemical Simulations
In Kürze
Identification of Potential Inhibitors of the SARS‐CoV‐2 NSP13 Helicase via Structure‐Based Ligand Design, Molecular Docking and Nonequilibrium Alchemical Simulations
Ehrungen, Karriere
Identification of Potential Inhibitors of the SARS‐CoV‐2 NSP13 Helicase via Structure‐Based Ligand Design, Molecular Docking and Nonequilibrium Alchemical Simulations
Aus den Fachgruppen
Identification of Potential Inhibitors of the SARS‐CoV‐2 NSP13 Helicase via Structure‐Based Ligand Design, Molecular Docking and Nonequilibrium Alchemical Simulations
EuChemS Policy Workshop „PFAS”
Identification of Potential Inhibitors of the SARS‐CoV‐2 NSP13 Helicase via Structure‐Based Ligand Design, Molecular Docking and Nonequilibrium Alchemical Simulations
Bafög beantragen

Das könnte Sie auch interessieren

GDCh-Mitglieder exklusiv

Artikel • Nachrichten aus der Chemie

In Kürze

GÖCH

Termin vormerken: Generalversammlung am 21. September Die diesjährige Generalversammlung ist im Rahmen der Chemietage am...

30.04.2026
GDCh-Mitglieder exklusiv

Artikel • Nachrichten aus der Chemie

Ehrungen, Karriere

Service

Ehrungen Finnian Freeling, Dr.: Promotionspreis Wasserchemie der Wasserchemischen Gesellschaft, Fachgruppe der GDCh, für...

30.04.2026
GDCh-Mitglieder exklusiv

Artikel • Nachrichten aus der Chemie

Aus den Fachgruppen

GDCh

Bauchemie Neuer Vorstand Die GDCh-Fachgruppe Bauchemie hat ihren Vorstand für die Amtszeit 1. Januar 2026 bis 31. Dezemb...

30.04.2026