CTX-M Enzymes: Origin and Diffusion

Rafael Cantón1, José María González-Alba, Juan Carlos Galán

  • 1Servicio de Microbiología, Hospital Universitario Ramón y Cajal, CIBER en Epidemiología y Salud Pública and Instituto Ramón y Cajal de Investigación Sanitaria Madrid, Spain.

Insights

CTX-M beta-lactamases evolve through gene capture from Kluyvera, forming diverse clusters. Selective pressures and mobile genetic elements drive their spread, contributing to a global multi-drug resistant bacteria pandemic.

Area of Science:

  • Microbiology
  • Evolutionary Biology
  • Genetics

Background:

  • CTX-M beta-lactamases are key mediators of antibiotic resistance.
  • Their evolution involves gene transfer from Kluyvera species.
  • Mobile genetic elements facilitate the dissemination of resistance genes.

Purpose of the Study:

  • To analyze the evolutionary pathways of CTX-M beta-lactamase clusters.
  • To understand the role of genetic elements in CTX-M gene capture and spread.
  • To highlight the implications for antibiotic resistance.

Main Methods:

  • In silico analyses of bla(CTX-M) gene origins and evolution.
  • Identification of associated mobile genetic elements (insertion sequences, integrons, transposons).
  • Review of factors contributing to the global spread of CTX-M producing organisms.

Main Results:

  • At least nine independent CTX-M gene capture events identified, forming distinct clusters (e.g., CTX-M-1, CTX-M-2, CTX-M-9).
  • Insertion sequences (ISEcp1, ISCR1) and complex genetic structures are crucial for gene mobilization.
  • Beta-lactam selective pressure fuels diversification, and epidemic plasmids drive global spread.

Conclusions:

  • CTX-M evolution is a paradigm of resistance mechanism development.
  • The capture and spread of CTX-M genes are facilitated by mobile genetic elements and selective pressures.
  • Emerging CTX-M variants and co-selection with other resistance genes pose a significant pandemic threat.

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