Li Qin, Zheng Yanhong, Guo Lijun, Xiao Ying, Li Haiyue, Yang Pingping, Xia Li, Liu Xiangqing, Chen Zhangyan, Li Li, Zhang Huaidong
College of Life Sciences, Fujian Normal University, Fuzhou, Fujian 350117, People's Republic of China.
Engineering Research Center of Industrial Microbiology, Ministry of Education, Fuzhou, Fujian 350117, People's Republic of China.
J Agric Food Chem. 2024 Jun 4. doi: 10.1021/acs.jafc.4c02677.
The escalating global consumption of tetracyclines (TCs) as broad-spectrum antibiotics necessitates innovative approaches to mitigate their pervasive environmental persistence and associated risks. While initiatives such as China's antimicrobial reduction efforts highlight the urgency of responsible TC usage, the need for efficient degradation methods remains paramount. Microbial degradation emerges as a promising solution, offering novel insights into degradation pathways and mechanisms. Despite challenges, including the optimization of microbial activity conditions and the risk of antibiotic resistance development, microbial degradation showcases significant innovation in its cost-effectiveness, environmental friendliness, and simplicity of implementation compared to traditional degradation methods. While the published reviews have summarized some aspects of biodegradation of TCs, a systematic and comprehensive summary of all the TC biodegradation pathways, reactions, intermediates, and final products including ring-opening products involved with enzymes and mechanisms of each bacterium and fungus reported is necessary. This review aims to fill the current gap in the literature by offering a thorough and systematic overview of the structure, bioactivity mechanism, detection methods, microbial degradation pathways, and molecular mechanisms of all tetracycline antibiotics in various microorganisms. It comprehensively collects and analyzes data on the microbial degradation pathways, including bacteria and fungi, intermediate and final products, ring-opening products, product toxicity, and the degradation mechanisms for all tetracyclines. Additionally, it points out future directions for the discovery of degradation-related genes/enzymes and microbial resources that can effectively degrade tetracyclines. This review is expected to contribute to advancing knowledge in this field and promoting the development of sustainable remediation strategies for contaminated environments.
作为广谱抗生素,四环素(TCs)在全球范围内的消费量不断攀升,这就需要创新方法来减轻其在环境中的普遍持久性及相关风险。虽然中国减少抗菌药物使用等举措凸显了负责任使用四环素的紧迫性,但高效降解方法的需求仍然至关重要。微生物降解成为一种有前景的解决方案,为降解途径和机制提供了新的见解。尽管存在挑战,包括优化微生物活性条件以及抗生素耐药性发展的风险,但与传统降解方法相比,微生物降解在成本效益、环境友好性和实施简便性方面展现出显著的创新性。虽然已发表的综述总结了四环素生物降解的一些方面,但有必要对所有已报道的细菌和真菌涉及的四环素生物降解途径、反应、中间体、最终产物(包括开环产物)以及每种细菌和真菌的酶和机制进行系统而全面的总结。本综述旨在通过全面系统地概述各种微生物中所有四环素抗生素的结构、生物活性机制、检测方法、微生物降解途径和分子机制,填补当前文献中的空白。它全面收集和分析了有关微生物降解途径的数据,包括细菌和真菌、中间产物和最终产物、开环产物、产物毒性以及所有四环素的降解机制。此外,它还指出了发现降解相关基因/酶和能够有效降解四环素的微生物资源的未来方向。本综述有望促进该领域的知识进步,并推动受污染环境可持续修复策略的发展。