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Origin and evolution of genes specifying resistance to macrolide, lincosamide and streptogramin antibiotics: data and

M Arthur1, A Brisson-Noël, P Courvalin

  • 1Unité des Agents Antibactériens, Centre National de la Recherche Scientifique U.A. 271, Institut Pasteur, Paris, France.

Insights

Antibiotic resistance to macrolide, lincosamide, and streptogramin (MLS) drugs arises from target modification or enzyme detoxification. Erm genes confer MLSB resistance via rRNA methylation, with ancient origins in producers but recent acquisition by enterobacteria.

Area of Science:

  • Microbiology
  • Molecular Biology
  • Genetics

Background:

  • Antibiotic resistance is a growing global health concern.
  • Macrolide, lincosamide, and streptogramin B (MLSB) antibiotics are crucial for treating bacterial infections.
  • Resistance mechanisms include target site alteration and antibiotic detoxification.

Purpose of the Study:

  • To compare amino acid sequences and codon usage of rRNA methylases and erm genes.
  • To investigate the evolutionary origins of erm genes in different bacterial species.
  • To analyze the mechanisms of resistance to MLS antibiotics beyond rRNA methylation.

Main Methods:

  • Comparative analysis of amino acid sequences of rRNA methylases.
  • Codon usage analysis of erm genes in various bacteria.
  • Nucleotide sequencing and homology analysis of ereA and ereB genes encoding erythromycin esterases.

Main Results:

  • Erm genes show homology, suggesting an ancestral role in erythromycin resistance, with ancient origins in Gram-positive bacteria.
  • Enterobacteria appear to have recently acquired ermB genes from Gram-positive cocci.
  • Erythromycin esterases (EreA and EreB) confer resistance via hydrolysis, with distinct evolutionary paths for type I and type II enzymes.

Conclusions:

  • The evolutionary history of antibiotic resistance genes, like erm and ere, varies significantly across bacterial taxa.
  • Understanding these evolutionary dynamics is crucial for combating antibiotic resistance.
  • Emerging resistance mechanisms, such as esterase-mediated inactivation, require continued surveillance.

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