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◇ bioRxiv2026-09-12· microbiology

Biochar suppression of antibiotic resistance genes in the soil microbiome

T. Brook, D. Bhatt, B. Reid, M. Hernandez, M. Olivelli

一句话结论

Stable isotope probing coupled to metagenomics was carried out to identify metabolically active microorganisms and quantify antimicrobial resistance gene (ARG) prevalence in a parkland soil with and without oak wood biochar and the antibiotic sulphamethazine after 300 days of incubation. Biochar significantly reduced ARG prevalence in the active heavy water metagenome from 23,485 ARGs in control soils to 10,002 ARGs in biochar-amended soils, while SMZ alone increased to 26,193 ARGs found in their metagenome. Biochar has the potential to mitigate the proliferation of AMR in agriculture environments through ARG adsorption, antibiotic immobilisation, and microbial community restructuring.

原始摘要(原文)
Antimicrobial resistance (AMR) in soils frequently arises from low-level antibiotic presence in agriculture systems where livestock receive antibiotics for disease prevention. Here we assess the influence of oak (Quercus robur) wood biochar (pyrolysis at 7600C) on the microbiome of a parkland soil, after 300 days of incubation, in the presence and absence of the antibiotic sulphamethazine (SMZ). Stable isotope probing coupled to metagenomics was carried out to identify metabolically active microorganisms and quantify antimicrobial resistance gene (ARG) prevalence. Across all treatments, Pseudomonadota and Actinobacteriota dominated (63-78%), with Pseudomonadota enriched in the biologically active heavy water fraction. Gemmatimonadota increased, and Bacillota decreased in heavy fractions, while minor phyla displayed variable shifts. Biochar significantly reduced ARG prevalence in the active heavy water metagenome from 23,485 ARGs in control soils to 10,002 ARGs in biochar-amended soils, while SMZ alone increased to 26,193 ARGs found in their metagenome. Combined biochar and SMZ treatment resulted in lower ARGs (16,890 ARGs) than both control and SMZ-only soils, likely due to a combination of ARG adsorption, antibiotic immobilisation, and microbial community restructuring. These results highlight the potential of biochar as a soil amendment for mitigating the proliferation of AMR in agriculture environments.
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Biochar suppression of antibiotic resistance genes in the soil microbiome — 科研速览 Science Skim