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Rysava, M.

Publications and source records attributed to Rysava, M..

2 recordsLinked to original sources

From ecology to evolution: plasmid- and colicin-mediated persistence of antibiotic resistant Escherichia coli in gulls

Antimicrobial resistance in wildlife is an emerging concern within the One Health concept. Gulls, due to their synanthropic behaviour and long-distance migration, are recognised as vectors and secondary reservoirs of resistant bacteria. These birds can facilitate the environmental spread of resistant strains across ecosystem boundaries. Understanding their role in shaping microbial communities is essential for assessing the broader ecological impact. This study investigates the persistence and competitive dynamics of cephalosporin-resistant Escherichia coli in Caspian gulls captured at their breeding colony at a water reservoir and subsequently monitored in captivity for three months, representing the longest in vivo experiment of its kind conducted on wild birds. We observed sustained colonization and long-term shedding of resistant E. coli throughout the entire study, marking the longest documented carriage of resistant bacteria in wild birds to date. Notably, rapid dissemination of various E. coli sequence types (STs) with CTX-M-1 was observed, with ST11138 rapidly outcompeting other strains, including the initially dominant ST11893. Genomic analyses revealed that ST11138 harboured F24:A-:B1 and IncI1/ST3/CTX-M-1 plasmids encoding colicins and corresponding immunity genes, likely conferring a competitive advantage. Our findings underscore the role of bacteriocin-mediated interactions in shaping microbial communities and highlight the importance of plasmid-encoded traits in the persistence of resistant strains in wildlife. Importantly, our findings underscore the ecological novelty of longitudinal in vivo tracking of AMR persistence in natural hosts and highlight the need to consider ecological and microbiome-level interactions when assessing the environmental dimension of AMR under the One Health concept. ImportanceAntimicrobial resistance in wildlife is an emerging concern within the One Health framework, with gulls recognized as important vectors and secondary reservoirs of resistant bacteria. Due to their synanthropic behaviour and long-distance migration, these birds can facilitate the spread of resistant strains across ecosystems. However, the role of wildlife in resistance dynamics remains underexplored, especially in long-term, natural settings. Our study is unique in its scope and duration, representing the longest in vivo experiment of its kind conducted on wild birds. By capturing these processes in live hosts under naturalistic conditions and across an extended period, our study provides rare and ecologically grounded insights into how antimicrobial resistance is maintained outside clinical or laboratory settings. Our findings show sustained colonization and long-term shedding of resistant E. coli, with strain ST11138 outcompeting others. Genomic analyses reveal plasmid-encoded traits, highlighting the novel ecological and evolutionary mechanisms underlying resistance maintenance in wildlife.

microbiology↗

Dynamic changes in the plasmidome and resistome in the gastrointestinal tract of chickens

The expansion of intensive poultry farming has led to a substantial increase in antibiotic use, which in turn has promoted the accumulation of antibiotic resistance genes (ARGs). The chicken gut serves as a reservoir for these genes and provides favorable conditions for their horizontal transfer via mobile genetic elements, such as plasmids. Through this process, commensal bacteria can transfer ARGs to pathogens, facilitating their spread and increasing the risk of transmission to humans. In this study, long-read sequencing was used to characterize plasmidome and resistome in 12 fecal samples from three houses of a commercial chicken broiler farm. All chickens received enrofloxacin in the first days of life, with one house additionally treated with sulfamethoxazole/trimethoprim combination. For comparison, metagenomic analysis using short-read sequencing was performed on the same samples. This study revealed the presence of various ARGs associated with resistance to 26 antibiotic classes. Strong genetic association between MOBP-type plasmids and fluoroquinolone resistance was observed within chicken broiler farm. Temporal trends indicated progressive mobilization of these ARGs, suggesting an increasing potential for horizontal gene transfer. While fluoroquinolone resistance expanded over time, diaminopyrimidine resistance remained stable despite the antibiotic treatment. Most ARGs were carried on small plasmids, and complete plasmid reconstructions ranged from 2.6 to 47.6 kb. Despite technical limitations, our findings demonstrate that plasmidome sequencing can enrich metagenomic analysis by enabling the detection of low-abundance plasmid types and providing deeper insights into the dynamic plasmid-mediated dissemination of ARGs in the chicken gut microbiome. ImportanceDespite the crucial role of plasmids in antimicrobial resistance (AMR) dissemination, studies focusing on plasmidome, defined as the complete set of plasmids, remain limited. Combining a metagenomic approach with a focus on plasmids enhances our ability to understand the genetic context and mechanisms underlying AMR transmission. The findings emphasize the importance of targeted plasmid analysis to improve surveillance and risk assessment of AMR transmission in microbial ecosystems.

microbiology↗