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Tauchi, H.

Publications and source records attributed to Tauchi, H..

2 recordsLinked to original sources

Conjugation dynamics and persistence of a carbapenem resistance gene blaOXA-72 from Acinetobacter pittii to Acinetobacter baumannii

Carbapenem-resistant Acinetobacter (CRA) has been associated with increased morbidity and mortality in clinical settings. In this study, we explored the transfer potential of a mobilizable plasmid-harboring blaOXA-72 gene between Acinetobacter species originating from patient, municipal wastewater, and pig farm wastewater. PCR-based evidence suggested putative transfer of blaOXA-72 from Acinetobacter pittii to Acinetobacter baumannii. In this pair, the apparent frequency of PCR-marker-positive putative transconjugants varied depending on temperature and meropenem supplementation, with higher number observed at 27{degrees}C compared to 17{degrees}C and 37{degrees}C. Likewise, the presence of antibiotic pressure yields to higher apparent conjugation frequency, however this observation was limited to a singled donor-recipient pair. Further, we revealed a phenotypic conversion in terms of meropenem susceptibility and a fitness cost in the putative transconjugants. While whole genome sequencing did not conclusively verify the presence of blaOXA-72 or fully resolved plasmid configuration, Oxford Nanopore read mapping consistently detected the chromosomal strA gene in all isolates. In contrast, only a limited number of reads aligned with blaOXA-72 gene, traC, or the complete plasmid sequences. Comparative analyses further revealed variations in the surface-associated factors and defense systems composition of the recipient strains, which could be considered as barriers in conjugation. Lastly, the persistence of PCR-detectable marker genes in putative transconjugants was variable and generally unstable over a 30-day period. Overall, these findings provide preliminary insights into the factors that may influence horizontal gene transfer and short-term maintenance of blaOXA-72. IMPORTANCECarbapenem-resistant Acinetobacter (CRA) is a serious clinical concern linked to elevated morbidity and mortality. This study shed light on how the carbapenemase gene blaOXA_72 spreads in the environment via horizontal gene transfer, Using isolates of Acinetobacter pittii and Acinetobacter baumannii from municipal wastewater treatment plant, we show that conjugation efficiency depends on temperature and antibiotic exposure. The process also incurs fitness costs, and the transferred gene persists only briefly in recipient cells. These results emphasize the importance of environmental sources as reservoirs for antimicrobial resistance gene exchange. Additionally, variations in surface structures and defense systems may act as potential barriers to conjugation. Overall, the work improves our understanding of AMR movement and supports the need for better integrated surveillance under a One Health approach.

microbiology↗

Nested mobile genetic elements mediating antimicrobial resistance genes mobility within and between cells in clinical and environmental Acinetobacter isolates

Mobile genetic elements (MGEs) play a central role in the acquisition and dissemination of antibiotic resistance genes (ARGs). This study analyzed the distribution of MGEs using the whole-genome sequences of 38 Acinetobacter isolates from patient, environmental, and pig waste samples. Insertion sequence (IS) elements were identified as the most common MGE type, followed by plasmids and prophages, with significant variations depending on isolation sources. Pig waste isolates exhibited the highest mean number of plasmids, while prophages were more prevalent in environment-associated isolates. Interestingly, we observed a significant positive correlation between the number of plasmids and number of defense systems. In contrast, a significant negative correlation was identified between the number of prophages and number of defense systems. Plasmids were the primary vectors of ARGs. Co-localization of multiple ARGs, such as msr(E) and mph(E); blaOXA-58, tet(Y), mph(B), and sul2 within a single plasmid was observed, suggesting potential for co-resistance and multidrug resistance. ARGs were enriched in pdif modules, with up to 10 distinct ARGs observed within a single module. Moreover, IS elements were more densely concentrated in conjugative elements. The study further highlights the role of nested MGEs in enabling hierarchical ARG transfer processes both within and between bacterial cells. Additionally, putative novel genomic resistance islands (GRIs) were identified in non-baumannii Acinetobacter species, representing the first documentation of GRIs outside the Acinetobacter calcoaceticus-baumannii (Acb) complex. This study provides new insights into the mechanisms of ARG dissemination in Acinetobacter, particularly the role of MGEs in facilitating hierarchical gene transfer processes. IMPORTANCEUnderstanding the mechanisms behind antimicrobial resistance gene (ARG) dissemination in various environments is crucial for combating the growing global problem of antimicrobial resistance. This study investigated the distribution patterns of mobile genetic elements (MGEs) across distinct ecological contexts, analyzing samples from patients, pig wastewater, and environmental surface water. By investigating the genomes of Acinetobacter species from various isolation sources, we revealed that pig waste-associated isolates possessed more plasmid-borne ARGs compared to patient- and environment-associated isolates. Further, we demonstrated that ARG-bearing plasmids possessed higher density of IS elements than ARG-free plasmids. Putative novel genomic islands were also observed in non-baumannii species isolated from pig wastewater. These findings elucidate the hierarchical structure of ARG transfer mechanisms mediated by nested MGEs, providing valuable insights into the emergence of resistance across both clinical and environmental ecosystems.

microbiology↗