Identifying potential monkeypox virus inhibitors: an in silico study targeting the A42R protein

Carolyn N Ashley1, Emmanuel Broni1, Chanyah M Wood1,2

  • 1Department of Medicine, Loyola University Medical Center, Loyola University Chicago, Maywood, IL, United States.

Insights

Computational screening identified seven promising compounds targeting the A42R protein for treating Mpox (monkeypox virus). These novel antivirals show higher binding affinity and stability than existing treatments, offering new hope against orthopoxviruses.

Area of Science:

  • Virology
  • Computational Chemistry
  • Drug Discovery

Background:

  • Mpox (monkeypox virus, MPXV) is an emerging zoonotic threat with over 80,000 cases reported globally between May-October 2022.
  • No FDA-approved MPXV-specific treatments currently exist, highlighting an urgent need for novel antiviral drug development.
  • The MPXV A42R profilin-like protein is a conserved, critical target for antiviral therapies against orthopoxviruses.

Purpose of the Study:

  • To identify potential MPXV A42R inhibitors using computational drug discovery methods.
  • To evaluate the binding affinity, stability, and potential antiviral activity of identified compounds.

Main Methods:

  • Virtual screening of 36,366 compounds from TCM, AfroDb, and PubChem databases against the MPXV A42R protein (PDB ID: 4QWO) using AutoDock Vina.
  • Molecular docking, MM/PBSA calculations, and 100 ns molecular dynamics simulations to assess binding affinity and complex stability.
  • PASS predictions and structural similarity searches to evaluate potential antiviral efficacy.

Main Results:

  • Seven compounds (PubChem CID: 11371962, ZINC000000899909, ZINC000001632866, ZINC000015151344, ZINC000013378519, ZINC000000086470, ZINC000095486204) exhibited higher binding affinities (-7.2 to -8.3 kcal/mol) than tecovirimat (-6.7 kcal/mol).
  • MM/PBSA and molecular dynamics simulations confirmed superior binding free energy (-73.252 to -97.140 kJ/mol) and stability for the identified compounds compared to tecovirimat.
  • PASS predictions indicated potential antiviral activity for all seven compounds, with ZINC000001632866 and ZINC000015151344 specifically predicted as poxvirus inhibitors.

Conclusions:

  • Seven computationally identified compounds demonstrate significant potential as novel antivirals targeting the MPXV A42R protein.
  • These compounds exhibit promising binding affinities and molecular stability, surpassing the reference drug tecovirimat.
  • Further experimental validation is warranted to confirm the therapeutic efficacy of these lead compounds against Mpox and other orthopoxviruses.