Large-scale characterization of the macrolide resistome reveals high diversity and several new pathogen-associated

David Lund1,2, Nicolas Kieffer2,3, Marcos Parras-Moltó1,2

  • 1Department of Mathematical Sciences, Chalmers University of Technology and University of Gothenburg, Gothenburg, Sweden.

Microbial Genomics
|January 27, 2022
PubMed

Insights

Researchers discovered thousands of new macrolide resistance genes using computational models, significantly expanding our understanding of antibiotic resistance. This work helps predict future threats from mobile resistance genes in pathogens.

Area of Science:

  • Genomics and Bioinformatics
  • Microbiology and Infectious Diseases
  • Computational Biology

Background:

  • Macrolide antibiotics are crucial for treating bacterial infections.
  • Resistance is often mediated by mobile Erm methyltransferases and Mph phosphotransferases.
  • The origins and future emergence of macrolide resistance genes remain largely unknown.

Purpose of the Study:

  • To characterize the global macrolide resistome using computational methods.
  • To identify novel macrolide resistance genes and understand their evolutionary origins.
  • To develop predictive models for emerging antibiotic resistance genes.

Main Methods:

  • Utilized optimized hidden Markov models to analyze over 16 terabases of genomic and metagenomic data.
  • Searched for erm and mph genes across diverse species (11,030) and environments (1944 samples).
  • Experimentally validated the function of predicted novel resistance genes in *Escherichia coli*.

Main Results:

  • Predicted 28,340 macrolide resistance genes, forming 663 gene families, with 94% being previously uncharacterized.
  • Identified six new resistance gene families located on mobile genetic elements in pathogens.
  • Experimental validation confirmed seven new genes confer erythromycin resistance, five also conferring azithromycin resistance.

Conclusions:

  • Macrolide resistance genes possess diverse origins and undergo extensive horizontal gene transfer into human pathogens.
  • Computational screening effectively identifies novel functional antibiotic resistance genes.
  • This study expands the known macrolide resistome tenfold, offering insights into resistance evolution and proactive threat identification.

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