Olive-Derived Triterpenes Suppress SARS COV-2 Main Protease: A Promising Scaffold for Future Therapeutics

Molecules. 2021 May 1;26(9):2654. doi: 10.3390/molecules26092654.

Abstract

SARS CoV-2 pandemic is still considered a global health disaster, and newly emerged variants keep growing. A number of promising vaccines have been recently developed as a protective measure; however, cost-effective treatments are also of great importance to support this critical situation. Previously, betulinic acid has shown promising antiviral activity against SARS CoV via targeting its main protease. Herein, we investigated the inhibitory potential of this compound together with three other triterpene congeners (i.e., ursolic acid, maslinic acid, and betulin) derived from olive leaves against the viral main protease (Mpro) of the currently widespread SARS CoV-2. Interestingly, betulinic, ursolic, and maslinic acids showed significant inhibitory activity (IC50 = 3.22-14.55 µM), while betulin was far less active (IC50 = 89.67 µM). A comprehensive in-silico analysis (i.e., ensemble docking, molecular dynamic simulation, and binding-free energy calculation) was then performed to describe the binding mode of these compounds with the enzyme catalytic active site and determine the main essential structural features required for their inhibitory activity. Results presented in this communication indicated that this class of compounds could be considered as a promising lead scaffold for developing cost-effective anti-SARS CoV-2 therapeutics.

Keywords: COVID-19; SARS CoV-2; in-silico; main protease; molecular dynamic simulation; olive leaves; triterpenes.

MeSH terms

  • Antiviral Agents / chemistry
  • Antiviral Agents / pharmacology*
  • Betulinic Acid
  • COVID-19 / virology
  • COVID-19 Drug Treatment*
  • Coronavirus 3C Proteases / antagonists & inhibitors*
  • Coronavirus 3C Proteases / chemistry
  • Coronavirus 3C Proteases / metabolism
  • Humans
  • Molecular Docking Simulation
  • Molecular Dynamics Simulation
  • Olea / chemistry
  • Pentacyclic Triterpenes / chemistry
  • Pentacyclic Triterpenes / pharmacology
  • Protease Inhibitors / chemistry
  • Protease Inhibitors / pharmacology*
  • SARS-CoV-2 / drug effects
  • SARS-CoV-2 / enzymology*
  • SARS-CoV-2 / metabolism
  • Triterpenes / chemistry
  • Triterpenes / pharmacology*
  • Ursolic Acid

Substances

  • Antiviral Agents
  • Pentacyclic Triterpenes
  • Protease Inhibitors
  • Triterpenes
  • betulin
  • maslinic acid
  • 3C-like proteinase, SARS-CoV-2
  • Coronavirus 3C Proteases
  • Betulinic Acid