Fecha de publicación:
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Fuente:
PubMed "rice"
Environ Pollut. 2026 Sep 10:129137. doi: 10.1016/j.envpol.2026.129137. Online ahead of print.ABSTRACTAquatic ecosystems are important environmental reservoirs of antibiotic resistance genes (ARGs) and virulence factor genes (VFGs), yet how anthropogenic disturbance influences their distribution and cross-niche transmission through benthic food webs remains poorly understood. Here, we systematically characterized resistome and virulome profiles across trophic niches, including sediments, benthic invertebrates and demersal fishes, along a gradient of anthropogenic disturbance in Gehu Lake, China. Metagenomic analysis identified 1,645 ARG and 1,939 VFG subtypes, with both gene pools exhibiting pronounced niche differentiation. Sediments harbored the highest abundance and diversity of both gene pools, whereas animal-associated niches exhibited substantial but host-dependent attenuation. Notably, anthropogenic disturbance significantly altered ARG and VFG profiles across all ecological niches, with stronger effects in sediments and benthic organisms than in fish guts, and was generally associated with higher ARG and VFG abundance and diversity. Integrative source-tracking and bacteria-gene association network analyses further demonstrated that bacterial transmission was the primary vector mediating the cross-trophic dissemination of both gene pools. Anthropogenic disturbance reshaped bacterial community structure across niches and enhanced bacterial migration along the food chain, as reflected by the increased contribution of bacteria derived from upstream trophic compartments. KEGG functional profiling suggested that these transmitted bacterial assemblages processed enhanced metabolic and adaptive capacities functions such as xenobiotic degradation. Among the enriched bacterial lineages, Pseudomonadota, Actinomycetota and Bacillota were dominant and showed a higher propensity to harbor ARGs and VFGs, thereby facilitating their persistence, amplification and trophic transfer. Collectively, our findings reveal a disturbance-driven, microbiome-mediated mechanism underlying the co-dissemination of ARGs and VFGs across aquatic food webs, highlighting the critical role of host-associated microbial selection in amplifying environmental health risk.PMID:42722277 | DOI:10.1016/j.envpol.2026.129137