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Generation of Enterobacter sp. YSU Auxotrophs Using Transposon Mutagenesis
Published on: October 31, 2014
Clinically prevalent transposons contribute to erm gene dissemination in the field soil under pseudo-persistent
Ziming Han1, Yu Zhang2, Xiao Luan1
1Key Laboratory of Environmental Aquatic Chemistry, State Key Laboratory of Regional Environment and Sustainability, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, Beijing 100085, China.
Abstract:
Clinically relevant antibiotic resistance genes (ARGs) or their ancestral genes are widespread in natural soil microbiome at ultralow abundance. Whether and how long-term antibiotic pressure in soil accelerate dissemination of these ARGs remain unclear. Here, annual cycle of erythromycin exposure at levels around 5-20 μg∙kg-1 was conducted in previously undisturbed field soil for consecutive five years, to simulate the pseudo-persistent characteristic of antibiotic contamination in soil environment. The primary clinically relevant macrolide resistance genes, rRNA methyltransferase genes (erm genes), were initially rare but gradually enriched, exhibiting a 37.8-fold increase after five years, which was greatly higher than macrolide efflux pump genes and inactivation genes (less than 2.3-fold). Among diverse mobile genetic elements, transposase gene tnpA exhibited potential association with the horizontal transfer of erm genes during long-term erythromycin exposure. From genetic and statistical evidence, enriched erm genes were presumed to locate on Bacilli with mobile transposable elements Tn554 and Tn551, which were clinically prevalent gene clusters in pathogens-Enterococcus and Staphylococcus. Thus, there may be a historical contribution of long-term erythromycin contamination to erm-carrying clinical transposable elements in soil microbiome. Our findings also demonstrated soil erythromycin exposure at levels much lower than laboratory-determined minimal selective concentrations (MSCs) still exhibits long-term effects on erm genes. Taking pseudo-persistent characteristic of antibiotic contamination, we further proposed long-term in-situ assessment with endpoint of clinically relevant ARGs to obtain a real-world MSC in the future studies.
Insights
Long-term erythromycin exposure in soil significantly enriches clinically relevant antibiotic resistance genes (erm genes), even at low concentrations. This suggests historical contamination may contribute to mobile resistance genes found in pathogens.
Area of Science:
- Environmental Microbiology
- Soil Science
- Antimicrobial Resistance
Background:
- Clinically relevant antibiotic resistance genes (ARGs) are present in soil microbiomes at low levels.
- The impact of long-term, low-level antibiotic pressure on ARG dissemination in soil is not well understood.
Purpose of the Study:
- To investigate the effect of simulated pseudo-persistent erythromycin contamination on ARGs in field soil over five years.
- To identify specific ARGs and mobile genetic elements affected by long-term antibiotic exposure.
Main Methods:
- Annual application of erythromycin (5-20 μg∙kg⁻¹) to undisturbed field soil for five consecutive years.
- Quantification of different macrolide resistance genes (rRNA methyltransferase, efflux pump, inactivation genes) and mobile genetic elements (transposase gene tnpA).
- Genetic and statistical analyses to infer ARG location and association with mobile elements.
Main Results:
- A significant 37.8-fold increase in clinically relevant rRNA methyltransferase genes (erm genes) was observed after five years.
- Macrolide efflux pump and inactivation genes showed minimal enrichment (<2.3-fold).
- The transposase gene tnpA was associated with erm gene transfer, suggesting enrichment on mobile elements like Tn554 and Tn551 in Bacilli.
Conclusions:
- Long-term, low-level erythromycin exposure in soil enriches specific clinically relevant ARGs (erm genes) far more than other types.
- Enriched erm genes likely reside on mobile genetic elements historically linked to clinical pathogens, suggesting soil contamination contributes to ARG reservoirs.
- Antibiotic concentrations below minimal selective concentrations (MSCs) can have long-term effects, necessitating in-situ ARG assessments for real-world MSC determination.
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