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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.
Abstract:
CTX-M β-lactamases are considered a paradigm in the evolution of a resistance mechanism. Incorporation of different chromosomal bla(CTX-M) related genes from different species of Kluyvera has derived in different CTX-M clusters. In silico analyses have shown that this event has occurred at least nine times; in CTX-M-1 cluster (3), CTX-M-2 and CTX-M-9 clusters (2 each), and CTX-M-8 and CTX-M-25 clusters (1 each). This has been mainly produced by the participation of genetic mobilization units such as insertion sequences (ISEcp1 or ISCR1) and the later incorporation in hierarchical structures associated with multifaceted genetic structures including complex class 1 integrons and transposons. The capture of these bla(CTX-M) genes from the environment by highly mobilizable structures could have been a random event. Moreover, after incorporation within these structures, β-lactam selective force such as that exerted by cefotaxime and ceftazidime has fueled mutational events underscoring diversification of different clusters. Nevertheless, more variants of CTX-M enzymes, including those not inhibited by β-lactamase inhibitors such as clavulanic acid (IR-CTX-M variants), only obtained under in in vitro experiments, are still waiting to emerge in the clinical setting. Penetration and the later global spread of CTX-M producing organisms have been produced with the participation of the so-called "epidemic resistance plasmids" often carried in multi-drug resistant and virulent high-risk clones. All these facts but also the incorporation and co-selection of emerging resistance determinants within CTX-M producing bacteria, such as those encoding carbapenemases, depict the currently complex pandemic scenario of multi-drug resistant isolates.
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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