Inhibition of Shikimate Kinase from Methicillin-Resistant Staphylococcus aureus by Benzimidazole Derivatives.

Lluvia Rios-Soto1, Alicia Hernández-Campos2, David Tovar-Escobar2

  • 1Facultad de Medicina y Nutrición, Universidad Juárez del Estado de Durango, Av. Universidad y Fanny, Anitúa S/N, Durango 34000, Mexico.

Insights

New benzimidazole derivatives show promise as the first inhibitors of MRSA shikimate kinase (SaSK). These compounds target a vital pathway in the bacteria, offering a potential new strategy against drug-resistant infections.

Area of Science:

  • Microbiology
  • Medicinal Chemistry
  • Drug Discovery

Background:

  • Antimicrobial resistance (AMR) is a major global health threat, with Methicillin-resistant Staphylococcus aureus (MRSA) being a high-priority pathogen.
  • MRSA survival depends on the shikimate pathway, which is absent in mammals, making its enzymes attractive drug targets.
  • Shikimate kinase (SK) is a key enzyme in the MRSA shikimate pathway, crucial for bacterial survival.

Purpose of the Study:

  • To screen a library of benzimidazole derivatives for inhibition of MRSA shikimate kinase (SaSK).
  • To characterize the identified SaSK inhibitors, including their kinetic and structural properties.
  • To evaluate the biological activity and potential drug-likeness of the lead compounds against MRSA.

Main Methods:

  • Screening of 170 benzimidazole derivatives against SaSK.
  • Kinetic analysis to determine inhibition type (competitive/non-competitive) and IC50 values.
  • Molecular docking and dynamics simulations to elucidate binding interactions.
  • In vitro assays to assess MRSA growth inhibition and mitochondrial effects.
  • ADMETox predictions for drug candidate potential.

Main Results:

  • Identification of the first benzimidazole-based SaSK inhibitors, C1 and C2.
  • C1 and C2 demonstrated competitive inhibition with respect to ATP and non-competitive inhibition with respect to shikimate.
  • Structural analysis revealed interactions with ARG113, a key residue in ATP binding.
  • Both compounds inhibited MRSA growth and affected mitochondrial electron transport chain complexes.
  • ADMETox predictions suggest C1 and C2 as potential drug candidates.

Conclusions:

  • Benzimidazole derivatives represent a novel class of SaSK inhibitors.
  • These compounds offer a promising scaffold for developing new anti-MRSA drugs.
  • Targeting the shikimate pathway via SaSK inhibition is a viable strategy against MRSA infections.