Inhibitor design to target a unique feature in the folate pocket of Staphylococcus aureus dihydrofolate reductase

N Prasad Muddala1, John C White2, Baskar Nammalwar1

  • 1Department of Chemistry, Oklahoma State University, 107 Physical Sciences I, Stillwater, OK, 74078, USA.

Insights

Researchers developed new trimethoprim derivatives to combat antibiotic-resistant Staphylococcus aureus. Modifications enhanced enzyme inhibition and provided insights into optimizing drug design for bacterial dihydrofolate reductase.

Area of Science:

  • Medicinal Chemistry
  • Microbiology
  • Structural Biology

Background:

  • Staphylococcus aureus (S. aureus) poses a significant threat due to rising antibiotic resistance.
  • Trimethoprim is an antibacterial agent that inhibits bacterial dihydrofolate reductase.
  • Previous work yielded a potent trimethoprim derivative with an acryloyl linker and dihydropthalazine moiety against S. aureus.

Purpose of the Study:

  • To expand on a series of trimethoprim derivatives.
  • To evaluate in vitro enzyme inhibition (Ki) and whole cell growth inhibition (MIC).
  • To investigate structure-activity relationships by modifying a chiral center and dihydrophthalazine ring.

Main Methods:

  • Synthesis of novel trimethoprim derivatives with structural variations.
  • Determination of enzyme inhibition constants (Ki) against bacterial dihydrofolate reductase.
  • Measurement of minimum inhibitory concentrations (MIC) against S. aureus.
  • Co-crystal structure analysis to elucidate inhibitor-protein interactions.

Main Results:

  • Modifications at the dihydrophthalazine edge (methyl, methoxy groups) increased MIC values.
  • Changes at the chiral carbon impacted Ki but minimally affected MIC.
  • Structural data indicated a preference for the S-enantiomer in the folate-binding pocket.
  • A cyclopropyl derivative with dimethoxy groups achieved the most potent Ki (0.7 ± 0.3 nM).
  • Co-crystal structure revealed an alternative binding mode accommodating both enantiomers.

Conclusions:

  • Structural modifications can fine-tune trimethoprim derivative binding to bacterial dihydrofolate reductase.
  • An alternative binding pocket allows for accommodation of racemic mixtures, enhancing inhibitory properties.
  • This study provides a design strategy for developing potent antibacterial agents against resistant strains.

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