Fidaxomicin resistance in Clostridioides difficile: a systematic review and predictive modeling with RNA polymerase

ThanhPhuong M Le1, Taryn A Eubank1, Ann M McKelvey2

  • 1Department of Pharmacy Practice and Translational Research, University of Houston College of Pharmacy, Houston, Texas, USA.

Insights

Fidaxomicin resistance in Clostridioides difficile is linked to mutations in RNA polymerase. These genetic changes, particularly in the beta subunit, affect drug binding and may predict emerging resistance.

Area of Science:

  • Microbiology
  • Molecular Biology
  • Genetics

Background:

  • Fidaxomicin (FDX) is a key antibiotic for treating *Clostridioides difficile* infections.
  • Mutations reducing FDX efficacy have been noted, but their molecular basis is unclear.
  • Understanding FDX resistance mechanisms is crucial for effective treatment.

Purpose of the Study:

  • To systematically review FDX resistance in *C. difficile* isolates.
  • To investigate if mutations linked to increased FDX MIC affect RNA polymerase (RNAP) binding.
  • To correlate genetic changes with FDX resistance development.

Main Methods:

  • Systematic literature search of PubMed (1991-2023) for *C. difficile* mutations and FDX MIC.
  • Analysis of seven selected studies based on inclusion/exclusion criteria.
  • Molecular visualization of FDX-RNAP interactions using Schrödinger Maestro and PDB data (7L7B).

Main Results:

  • The V1143 mutation in the RNAP beta subunit was most common (~50%).
  • Most mutations occurred in the beta' subunit of RNAP.
  • About one-third of mutations directly impacted FDX binding sites on RNAP; others were nearby.

Conclusions:

  • Elevated FDX MIC in *C. difficile* strains correlates with known RNAP binding site residues.
  • Genomic analysis can potentially identify and predict emerging FDX resistance.
  • Further research into mutation-drug interaction is warranted.

Related Concept Videos

Development of Antibiotic Resistance01:30

Development of Antibiotic Resistance

Antibiotic resistance is a major public health concern that arises when bacteria evolve mechanisms to withstand the effects of antibiotic treatments. This resistance can be intrinsic, acquired through genetic mutations, or transferred between bacteria via horizontal gene transfer. The development of antibiotic resistance poses significant challenges in treating bacterial infections and necessitates ongoing research to develop new therapeutic strategies.Intrinsic resistance occurs when bacterial...
Mechanism of Antibiotic Resistance in MRSA01:25

Mechanism of Antibiotic Resistance in MRSA

Antibiotic resistance in bacteria arises when microorganisms evolve the ability to withstand drugs designed to kill them or inhibit their growth, rendering once-effective treatments useless. This phenomenon, driven by genetic change and selection under antibiotic exposure, poses a profound threat to modern medicine. Mechanisms include drug-inactivating enzymes (e.g., β-lactamases), efflux pumps that eject antibiotics, mutations altering antibiotic targets, decreased drug uptake, and acquisition...
Clinical Significance of Antibiotic Resistance01:25

Clinical Significance of Antibiotic Resistance

Methicillin-resistant Staphylococcus aureus (MRSA) presents a critical public health threat, arising from its capacity to resist β-lactam antibiotics due to acquisition of the mecA gene within the staphylococcal cassette chromosome mec (SCCmec). This gene encodes penicillin-binding protein 2a (PBP2a), which impairs binding efficacy of methicillin and other β-lactams. MRSA has evolved into distinct clonal lineages impacting humans and animals alike, reinforcing its significance within the One...