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Sulfonamide resistance: mechanisms and trends

Ola Sköld1

  • 1Division of Microbiology, Department of Pharmaceutical Biosciences, Uppsala University, Sweden

Insights

Sulfonamide antibiotics target bacterial dihydropteroate synthase (DHPS). Resistance emerges through mutations and horizontal gene transfer, leading to drug-insensitive DHPS variants in pathogens.

Area of Science:

  • Microbiology
  • Drug Discovery
  • Biochemistry

Background:

  • Sulfonamides were early selective antibacterial agents targeting dihydropteroate synthase (DHPS).
  • Widespread resistance has reduced their clinical use.
  • Mammalian cells bypass the DHPS pathway by utilizing external folate.

Purpose of the Study:

  • Investigate mechanisms of sulfonamide resistance in bacteria.
  • Characterize drug-resistant dihydropteroate synthase variants.
  • Understand the genetic basis of sulfonamide insensitivity.

Main Methods:

  • Analysis of laboratory and clinical bacterial mutants.
  • Gene sequencing of folP and resistance genes (sul1, sul2).
  • Enzyme kinetics and substrate binding assays for DHPS variants.

Main Results:

  • Laboratory mutants show a resistance-performance trade-off.
  • Clinical resistance often involves horizontally transferred folP genes.
  • Plasmid-borne sul1 and sul2 genes encode sulfonamide-insensitive DHPS variants.
  • Resistant DHPS enzymes maintain p-aminobenzoic acid binding despite structural similarity to sulfonamides.

Conclusions:

  • Horizontal gene transfer of alternative DHPS variants is a key mechanism for sulfonamide resistance.
  • Resistant DHPS enzymes have evolved to evade sulfonamide inhibition while retaining substrate affinity.
  • Understanding these resistance mechanisms is crucial for developing new antibacterial strategies.

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