Ning Zhu, Yujiao Long, Zexin Kan, Yun Cao, Hongmei Jin
The propagation of antibiotic resistance genes (ARGs) in livestock manure presents a significant risk to environmental safety and human health. Biochar amendment is a promising approach to reduce ARGs during composting, yet the performance and mechanisms of different types of biochars are poorly understood. This study compared the effects of pyrochar and hydrochar on the dynamics of ARGs, mobile genetic elements (MGEs) and bacterial communities during swine manure composting. Results showed that hydrochar amendment led to a significantly higher removal of total detected ARGs (94.54%) compared to pyrochar (83.91%) and conventional composting (70.15%). Hydrochar was also associated with a greater reduction in ISCR1, a genetic element linked to ARGs mobilization, in contrast to inhibition of integron gene intI1 by pyrochar. Network analysis showed that while both biochars reduced the abundance of putative host genera such as Anaerococcus, Lactobacillus and Streptococcus, hydrochar amendment was associated with a lower pH environment in compost, which may have contributed to the suppression of putative bacterial hosts. Redundancy analysis and structural equation modeling indicated that MGEs and putative bacterial hosts were the primary direct factors affecting ARGs dynamics during biochar-amended composting. These findings underscore the different roles of pyrochar and hydrochar in mitigating antibiotic resistance during composting, and provide new insights into biochar-mediated strategies for safe organic waste management.