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Chloramphenicol biodegradation by Citrobacter freundii CT2: Degradation pathways, toxicity assessment, and genomic analysis

弗氏柠檬酸杆菌 生物降解 氯霉素 微生物学 降级(电信) 柠檬酸杆菌 毒性 化学 计算生物学 生物 肠杆菌科 遗传学 抗生素 基因 计算机科学 大肠杆菌 生态学 电信 有机化学
作者
Xueping JIANG,Hao Li,Jia Kong,Yongjun Zang,Yuqi Li,Jianglong He,Ran Zhang,Bangxing Han,Kwang‐Sik Lee,Byung Rae JIN,Zhongzheng Gui
出处
期刊:Environmental Technology and Innovation [Elsevier BV]
卷期号:39: 104330-104330 被引量:1
标识
DOI:10.1016/j.eti.2025.104330
摘要

Chloramphenicol (CAP), a widely used antibiotic, persists in the environment and poses ecological risks. Despite the growing understanding of these degradation pathways of CAP, the secondary metabolic routes and their impacts on the environment remain poorly understood. Here, we aimed to characterize the CAP-biodegradation capability of a novel bacterial strain, evaluate the biodegradation kinetics of CAP under different nutritional and environmental conditions, and assess the toxicity of CAP and its degradation products. Citrobacter freundii CT2 isolated from fermented silkworm excrement was found to degrade CAP with an efficiency of 96.29% within 24 h. CAP is the sole source of carbon, nitrogen, and energy for this bacterium. The degradation process fitted well with the first-order kinetics model. Ten potential biotransformation products were identified using ultraperformance liquid chromatography–high-resolution mass spectrometry (UPLC-HRMS) and high-performance liquid chromatography (HPLC), and five distinct metabolic pathways (acetylation, propionylation, butyrylation, dehydration, and oxidation) were predicted. A toxicity assessment of the biotransformation products, conducted using biological indicators, showed that the final metabolites were non-toxic to the environment, confirming that the biodegradation process resulted in detoxification. Bio-enhancement studies further demonstrated that strain CT2 effectively degraded CAP in wastewater. Genomic analysis showed that genes related to acetylation, propionylation, nitro reductase and dehydrogenation in strain CT2 might be involved in the biodegradation of CAP. These results offer new insights into the diversity of CAP-degrading pathways and highlight the utility of strain CT2 as a potential bioremediation agent for CAP-contaminated environments. • Citrobacter freundii CT2 efficiently degraded 96.29% of CAP within 24 h. • Ten potential biotransformation products were identified, and five distinct metabolic pathways were predicted. • The final metabolites of CAP biotransformation were non-toxic to the environment. • Citrobacter freundii CT2 effectively degrades CAP in wastewater. • Four related genes might be involved in CAP biodegradation.
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