Yi Chen, Weili Jia, Rui Ma, Yi‐Hao Yu, Lu-Kai Qiao, Fang-Zhou Gao, Guang‐Guo Ying
Agricultural soil represent a critical hotspot for the emergence and dissemination of antibiotic resistance genes (ARGs), posing significant threats to food safety, public health, and agricultural sustainability. Biochar, a carbon rich material derived from biomass pyrolysis, has emerged as a promising soil amendment capable of modulating the fate and transport of ARGs in terrestrial ecosystems. Nevertheless, the underlying mechanisms by which biochar and its associated dissolved organic matter (biochar-derived dissolved organic matter, BDOM) influence ARG dynamics remain poorly understood. It is hypothesized that biochar and BDOM regulate ARG dissemination through their effects on soil microbial community composition, functional potential, and metabolic activity. To test this hypothesis, we conducted a controlled microcosm experiment in which corn stover biochar (CBC), reed straw biochar (RBC), corn stover BDOM (CBDOM), and reed straw BDOM (RBDOM) were applied to agricultural soil amended with organic fertilizer. Our results revealed contrasting effects of the two biochar types: CBC increased the relative abundance of ARGs by up to 2.48-fold ( p < 0.05) compared to organic fertilizer control, whereas RBC consistently suppressed ARG levels by up to 91%. In contrast, BDOM exhibited a comparatively weaker influence on ARG abundance than its solid-phase biochar counterpart. Partial least-squares path modeling identified mobile genetic elements as the primary drivers of ARG dissemination across all treatments. Notably, the CBC application was associated with a marked enrichment of IntI1 . Conversely, both RBC and BDOM suppressed polyunsaturated fatty acid metabolism and ATP synthesis, potentially reducing microbial antibiotic resistance. Furthermore, CBC promoted the potential ARG hosts involved in xenobiotic degradation, while RBC enhanced the potential hosts associated with the nitrogen cycle. Collectively, these findings elucidate the complex and feedstock-dependent roles of biochar in shaping ARG dynamics in agricultural soils, offering a strategic, cost-effective, and environmentally sustainable approach to mitigate ARG pollution in agroecosystems. Given the scalability and low remediation costs of biochar-based technologies, this work provides a scientific foundation for integrating biochar into best management practices aimed at safeguarding soil health and reducing the environmental burden of antimicrobial resistance. • Corn stover biochar (CBC) and reed straw biochar (RBC) showed differential effects on antibiotic resistance genes (ARGs) abundance in the soil. • CBC increased the abundance of mobile genetic elements. • CBC promoted potential ARG hosts involved in xenobiotic degradation. • RBC increased the number of potential ARG hosts involved in the nitrogen cycle.