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Sulfonamide resistance: mechanisms and trends
1Division of Microbiology, Department of Pharmaceutical Biosciences, Uppsala University, Sweden
Abstract:
Sulfonamides were the first drugs acting selectively on bacteria which could be used systemically. Today they are infrequently used, in part due to widespread resistance. The target of sulfonamides, and the basis for their selectivity, is the enzyme dihydropteroate synthase (DHPS) in the folic acid pathway. Mammalian cells are not dependent on endogenous synthesis of folic acid and generally lack DHPS. Instead, they have a folate uptake system which most prokaryotes lack. Laboratory mutants in the dhps (folP) gene can be easily isolated and show a trade off between sulfonamide resistance and DHPS enzyme performance. Clinical resistant mutants, however, have additional compensatory mutations in DHPS that allow it to function normally. In many pathogenic bacteria sulfonamide resistance is mediated by the horizontal transfer of foreign folP or parts of it. Clinical resistance in gram-negative enteric bacteria is plasmid-borne and is effected by genes encoding alternative drug-resistance variants of the DHPS enzymes. Two such genes, sul1 and sul2, have been sequenced and are found at roughly the same frequency among clinical isolates. Remarkably, the corresponding DHPS enzymes show pronounced insensitivity to sulfonamides but normal binding to the p -aminobenzoic acid substrate, despite the close structural similarity between substrate and inhibitor. Copyright 2000 Harcourt Publishers Ltd.
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.