Molecular and Dynamic Mechanism Underlying Drug Resistance in Genotype 3 Hepatitis C NS3/4A Protease

Djadé I Soumana1, Nese Kurt Yilmaz1, Akbar Ali1

  • 1Department of Biochemistry and Molecular Pharmacology, University of Massachusetts Medical School , Worcester, Massachusetts 01605, United States.

Insights

Hepatitis C virus (HCV) protease inhibitors are less effective against genotype 3. This study reveals that altered protein-inhibitor dynamics, not just structural changes, explain this reduced potency, guiding future drug development.

Area of Science:

  • Virology
  • Structural Biology
  • Drug Discovery

Background:

  • Hepatitis C virus (HCV) affects 150 million globally, causing cirrhosis and liver cancer.
  • Direct-acting antivirals (DAAs) transformed HCV treatment, but efficacy varies by genotype.
  • Current NS3/4A protease inhibitors show reduced potency against HCV genotype 3 (GT-3).

Purpose of the Study:

  • To elucidate the molecular basis for the reduced potency of HCV NS3/4A protease inhibitors against GT-3.
  • To understand the structural and dynamic factors contributing to PI failure in GT-3 infections.

Main Methods:

  • Engineered a chimeric GT-1a3a NS3/4A protease for crystallization.
  • Determined high-resolution crystal structures of the chimera bound to three protease inhibitors.
  • Performed molecular dynamics simulations and inhibition assays.

Main Results:

  • Subtle structural differences were observed between GT-1 and GT-1a3a proteases bound to inhibitors.
  • Significant alterations in hydrogen-bonding interactions and dynamic fluctuations of inhibitors were identified in the chimera.
  • A strong correlation was found between loss of intermolecular dynamics and reduced inhibitor potency.

Conclusions:

  • Reduced potency of HCV protease inhibitors against GT-3 is primarily due to altered protein-inhibitor complex dynamics, not just static structural changes.
  • Genotypic polymorphisms influencing intermolecular dynamics are key to understanding and overcoming PI resistance.
  • Findings provide a molecular basis for designing more effective HCV therapies targeting diverse genotypes.

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