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Ramiro-Martinez, P.

Publications and source records attributed to Ramiro-Martinez, P..

3 recordsLinked to original sources

Plasmids promote bacterial evolution through a copy number-driven increase in mutation rate

Plasmids are autonomously replicating DNA molecules that stably coexist with chromosomes in bacterial cells. These genetic elements drive horizontal gene transfer and play a fundamental role in bacterial ecology and evolution. Theory suggests that plasmids might evolve faster than chromosomes, as the mutation rate per gene should proportionally increase with plasmid copy number. However, the segregation of plasmid copies to daughter cells is random, introducing an additional layer of genetic drift, known as segregational drift, that might delay plasmid evolution. The interplay between plasmid mutational supply and segregational drift determines the evolutionary rate of plasmid-encoded genes, yet the relative contribution of these opposite forces in plasmid evolution remains unclear. Here, we took a classical population genetics framework to devise a mathematical approximation that predicts the fate of plasmid mutations in bacterial populations. We then validate these predictions by integrating computational, experimental, and bioinformatic approaches. Our findings show that plasmid mutation rates scale logarithmically with copy number: while increasing copy number elevates the mutation rate, the effect diminishes at higher copy numbers, where additional copies yield only marginal increases. Nonetheless, the supply of new mutations consistently surpasses the impact of segregational drift across all copy number levels. These results underscore plasmids as powerful platforms for bacterial evolvability and help explain their remarkable prevalence across microbial phylogeny.

microbiology↗

Universal rules govern plasmid copy number

Plasmids -autonomously replicating DNA molecules- exhibit a broad range of replication and mobility strategies, genetic repertoires, host ranges, sizes, and copies per cell. However, the determinants of plasmid copy number (PCN) remain poorly understood. Here, we use extensive DNA sequencing data to analyse the copy number of thousands of diverse bacterial plasmids in a comprehensive manner. We find that PCN is highly variable, spanning nearly three orders of magnitude, and that it is intrinsically robust against changes in genomic context. We further show that PCN variability is tightly associated with plasmid lifestyles, and propose the concept of replicon dominance to explain interactions in widespread multi-replicon plasmids. Finally, we uncover a universal scaling law that links copy number and plasmid size across bacterial species, indicating that pervasive constraints modulate the PCN-size trade-off.

microbiology↗

β-lactamase expression induces collateral sensitivity in Escherichia coli

Major antibiotic groups are losing effectiveness due to the uncontrollable spread of antimicrobial resistance (AMR) genes. Among these, {beta}-lactam resistance genes -encoding {beta}-lactamases- stand as the most common resistance mechanism in Enterobacterales due to their frequent association with mobile genetic elements. In this context, novel approaches that counter mobile AMR are urgently needed. Collateral sensitivity (CS) occurs when the acquisition of resistance to one antibiotic increases susceptibility to another antibiotic and can be exploited to selectively eliminate AMR. However, most CS networks described so far emerge as a consequence of chromosomal mutations and cannot be leveraged to tackle mobile AMR. Here, we dissected the CS response elicited by the acquisition of a prevalent antibiotic resistance plasmid to reveal that the expression of the {beta}-lactamase blaOXA-48 induces CS to colistin and azithromycin. We next showed that expression of other clinically relevant mobile {beta}-lactamases produces similar CS responses in multiple, phylogenetically unrelated E. coli strains. Finally, by combining experiments with surveillance data comprising thousands of antibiotic susceptibility tests, we showed that {beta}-lactamase-induced CS is pervasive within Enterobacterales. These results highlight that the physiological side-effects of {beta}-lactamases can be leveraged therapeutically, paving the way for the rational design of specific therapies to block mobile AMR or at least counteract their effects.

microbiology↗