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异位发酵系统中高温固态和液态猪粪发酵过程中抗生素抗性基因和金属抗性基因的命运。

Fate of antibiotic resistance genes and metal resistance genes during the thermophilic fermentation of solid and liquid swine manures in an ectopic fermentation system.

机构信息

Institute of Plant Protection and Microbiology, Zhejiang Academy of Agriculture Science, Hangzhou, Zhejiang, PR China.

Institute of Plant Protection and Microbiology, Zhejiang Academy of Agriculture Science, Hangzhou, Zhejiang, PR China.

出版信息

Ecotoxicol Environ Saf. 2021 Apr 15;213:111981. doi: 10.1016/j.ecoenv.2021.111981. Epub 2021 Feb 13.

DOI:10.1016/j.ecoenv.2021.111981
PMID:33592372
Abstract

Environmental pollution due to resistance genes from livestock manure has become a serious issue that needs to be resolved. However, little studies focused on the removal of resistance genes in simultaneous processing of livestock feces and urine. This study investigated the fate of antibiotic resistance genes (ARGs), metal resistance genes (MRGs), and class 1 integron-integrase gene (intI1) during thermophilic fermentation of swine manure in an ectopic fermentation system (EFS), which has been regarded as a novel system for efficiently treating both feces and urine. The abundances of MRGs and tetracycline resistance genes were 34.44-97.71% lower in the EFS. The supplementation of heavy metals significantly increased the abundance of intI1, with the enhancement effect of copper being more prominent than that of zinc. The highest abundances of resistance genes and intI1 were observed at high Cu levels (A2), indicating that Cu can increase the spreading of resistance genes through integrons. Network analysis revealed the co-occurrence of ARGs, MRGs, and intI1, and these genes potentially shared the same host bacteria. Redundancy analysis showed that the bacterial community explained most of the variations in ARGs, and environmental factors had influences on ARGs abundances by modulating the bacterial community composition. The decreased Sphingomonas, Comamonas, Acinetobacter, Lactobacillus, Bartonella, Rhizobium, and Bacteroides were mainly responsible for the reduced resistance genes. These results demonstrate that EFS can reduce resistance genes in simultaneous processing of livestock feces and urine.

摘要

由于畜牧粪便中抗性基因导致的环境污染已成为一个亟待解决的严重问题。然而,目前针对同时处理畜牧粪便和尿液中抗性基因的研究较少。本研究探讨了抗生素抗性基因(ARGs)、金属抗性基因(MRGs)和 1 类整合子整合酶基因(intI1)在异位发酵系统(EFS)中猪粪高温发酵过程中的命运,该系统被认为是一种同时高效处理粪便和尿液的新型系统。EFS 中 MRGs 和四环素抗性基因的丰度降低了 34.44%-97.71%。重金属的添加显著增加了 intI1 的丰度,其中铜的增强效果比锌更明显。在高 Cu 水平(A2)下,观察到抗性基因和 intI1 的丰度最高,表明 Cu 可以通过整合子增加抗性基因的传播。网络分析揭示了 ARGs、MRGs 和 intI1 的共同发生,这些基因可能共享相同的宿主细菌。冗余分析表明,细菌群落解释了 ARGs 变化的大部分,环境因素通过调节细菌群落组成来影响 ARGs 的丰度。减少的鞘氨醇单胞菌、贪铜菌、不动杆菌、乳杆菌、巴尔通体、根瘤菌和拟杆菌主要负责减少抗性基因。这些结果表明,EFS 可以减少同时处理畜牧粪便和尿液中的抗性基因。

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