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Biodegradation mechanism of tetracycline (TEC) by strain Klebsiella sp. SQY5 as revealed through products analysis and genomics

机译:Klebsiella sp。菌株对四环素(TEC)的生物降解机理。

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Although it has been proved that abiotic processes can transform tetracycline (TEC), little is known about how microbial processes may degrade TEC in aquatic environment. The objective of this study is to investigate the biodegradation pathway of TEC by strain Klebsiella sp. SQY5 and molecular mechanism of TEC resistance under the aerobic conditions. Effects of mycelium, intracellular, and extracellular enzyme on TEC degradation process were explored, suggesting that mycelium contributed the most of TEC degradation with a maximum efficiency of 58.64%. Biodegradation characteristic of TEC and its degradation products were studied. The results showed that nine possible biodegradation products were identified, and a potential biodegradation pathway was proposed including the removal of methyl, carbonyl, and amine groups. The functional genes of this bacterium were also determined by genomics, and analysis indicated that functional genes that could be relevant to hydrolysis, ring opening and oxidation played an important role in the process of TEC biodegradation. Results from this study can provide a theoretical basis for better estimating the fate, transportation, and degradation of antibiotics in aquatic environment.
机译:尽管已经证明非生物过程可以转化四环素(TEC),但对于微生物过程如何降解水生环境中的TEC知之甚少。这项研究的目的是调查克雷伯菌属菌株的TEC生物降解途径。有氧条件下SQY5和TEC抗性的分子机制。探索了菌丝,细胞内和细胞外酶对TEC降解过程的影响,表明菌丝体贡献了大部分TEC降解,最大效率为58.64%。研究了TEC及其降解产物的生物降解特性。结果表明,鉴定了九种可能的生物降解产物,并提出了潜在的生物降解途径,包括去除甲基,羰基和胺基。还通过基因组学确定了该细菌的功能基因,分析表明,与水解,开环和氧化有关的功能基因在TEC生物降解过程中起着重要作用。这项研究的结果可以为更好地估算水生环境中抗生素的命运,运输和降解提供理论依据。

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