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◇ medRxiv2026-09-13· occupational and environmental health

Resolving the Genomic Context of Clinically Relevant Antibiotic Resistance Genes in Wastewater with Ligation-Mediated PCR

M. E. O'Brien, B. Ahern, P. Brase, S. Kim, C. E. M. McCormack, D. Garcia, E. Keim, E. Dahl, M. Feck, K. Kauber, J. A. Marchand, R. S. Kantor, A. J. Pickering, B. McArdle, E. R. Fuhrmeister

原始摘要(英文原文)· Original abstract
Abstract Antimicrobial resistance (AMR) is a pressing global public health challenge. AMR is driven in part by the spread of antibiotic resistance genes (ARGs) through bacterial communities via mobile genetic elements. Influent wastewater is a promising sample type for monitoring AMR because it pools biological inputs shed by individuals across a population. However, untargeted sequencing approaches, such as metagenomic sequencing, often miss low-abundance targets such as clinically important ARGs. In this work, we develop a ligation-mediated PCR (LM-PCR) enrichment strategy that can directionally capture the genomic context surrounding an ARG using long-read sequencing. We applied this method to study the natural genomic context diversity of four clinically relevant ARGs (blaCTX-M, blaKPC, and blaOXA-48-like, and qnrS) across 13 wastewater treatment plants in Washington state, each sampled at two timepoints. Across all timepoints, LM-PCR identified distinct genomic context cluster families associated with each ARG, including seven for blaKPC, 11 for blaCTX-M, 24 for qnrS, and one for blaOXA-48-like. Notably, 11 of the 24 qnrS containing clusters were putatively novel, with no matches to existing sequences in public databases. Genomic contexts associated with blaCTX-M and blaKPC were comparatively conserved across clusters, whereas qnrS was associated with a more diverse set of genetic sequences. Together, these results demonstrate that LM-PCR can resolve low-abundance, ARG-associated genomic variation in complex wastewater samples and provide a scalable framework for tracking the dissemination of clinically relevant AMR determinants.
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