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April 19, 20260 citationsOpen Access

Extracellular vesicles drive stress-induced antibiotic resistance spread in soil

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YQYi-fei QinWZWan-Rong ZhangLWLu Wang

Key Points

  • This research aims to understand how diverse artificial sweeteners influence the spread of antibiotic resistance in soil via extracellular vesicles.
  • Analyzed the impact of artificial sweetener diversity on antibiotic resistance gene (ARG) enrichment in extracellular vesicles (EVs).
  • Investigated the relationship between EVs formation and stress conditions in bacteria, specifically focusing on Pseudomonadota.
  • Examined compositional shifts of EV-associated genera and their effects on the bulk microbiome.
  • Found that increased sweetener diversity significantly enriched ARGs, virulence factors, and mobile genetic elements in EVs.
  • Identified that 30.5% of EV-associated genera underwent compositional shifts, while the overall microbiome remained stable.
  • Confirmed that stress-induced vesicles from a subset of Pseudomonadota selectively package and transfer resistance traits to Escherichia coli.

Abstract

Antimicrobial resistance threatens millions of lives annually, yet its acceleration by non-antibiotic pollutants remains poorly understood. Artificial sweeteners, now ubiquitous in soils and waters, are known individually to promote conjugative transfer of resistance genes, but real environments contain complex mixtures whose collective impact is unknown. Extracellular vesicles (EVs) released by stressed bacteria serve as protected, long-range vectors for antibiotic resistance genes (ARGs), yet whether sweetener diversity modulates this pathway has never been tested. Here we show that increasing artificial-sweetener diversity dramatically enriches ARGs, virulence factors and mobile genetic elements inside soil-derived Evs, driving compositional shifts in 30.5% of EV-associated genera while leaving the bulk microbiome largely undisturbed. EVs originate from a small, fast-growing Pseudomonadota subset that upregulates vesicle-biogenesis genes in response to oxidative and membrane stress; these vesicles selectively package chromosomal resistance traits and transfer phenotypic resistance to recipient Escherichia coli. This stress-induced decoupling reveals EVs as rapid, hidden mediators of resistome mobilization that community-level surveys miss. By demonstrating that pollutant diversity itself drives resistance dissemination through nanoscale vectors, our findings establish EVs as a critical new indicator within the One Health framework and call for revised environmental risk models that account for chemical complexity rather than single-compound exposures.

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Cite This Study

Qin et al. (2026) studied this question.

synapsesocial.com/papers/69e4734c010ef96374d8f22ahttps://doi.org/10.17169/refubium-51999
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