Harnessing the power of bacterial laccases for xenobiotic degradation in water: A 10-year overview

漆酶 异型生物质的 废水 环境科学 生物转化 人口 环境化学 生物修复 生物技术 生化工程 化学 环境工程 生物 工程类 生态学 污染 生物化学 人口学 社会学
作者
Mujeeb Ur Rahman,Muhammad Wajid Ullah,Junaid Ali Shah,Sivasamy Sethupathy,Hazart Bilal,Sidikov Akmal Abdikakharovich,Afaq Ullah Khan,Khalid Ali Khan,Noureddine Elboughdiri,Daochen Zhu
出处
期刊:Science of The Total Environment [Elsevier]
卷期号:918: 170498-170498 被引量:13
标识
DOI:10.1016/j.scitotenv.2024.170498
摘要

Industrialization and population growth are leading to the production of significant amounts of sewage containing hazardous xenobiotic compounds. These compounds pose a threat to human and animal health, as well as the overall ecosystem. To combat this issue, chemical, physical, and biological techniques have been used to remove these contaminants from water bodies affected by human activity. Biotechnological methods have proven effective in utilizing microorganisms and enzymes, particularly laccases, to address this problem. Laccases possess versatile enzymatic characteristics and have shown promise in degrading different xenobiotic compounds found in municipal, industrial, and medical wastewater. Both free enzymes and crude enzyme extracts have demonstrated success in the biotransformation of these compounds. Despite these advancements, the widespread use of laccases for bioremediation and wastewater treatment faces challenges due to the complex composition, high salt concentration, and extreme pH often present in contaminated media. These factors negatively impact protein stability, recovery, and recycling processes, hindering their large-scale application. These issues can be addressed by focusing on large-scale production, resolving operation problems, and utilizing cutting-edge genetic and protein engineering techniques. Additionally, finding novel sources of laccases, understanding their biochemical properties, enhancing their catalytic activity and thermostability, and improving their production processes are crucial steps towards overcoming these limitations. By doing so, enzyme-based biological degradation processes can be improved, resulting in more efficient removal of xenobiotics from water systems. This review summarizes the latest research on bacterial laccases over the past decade. It covers the advancements in identifying their structures, characterizing their biochemical properties, exploring their modes of action, and discovering their potential applications in the biotransformation and bioremediation of xenobiotic pollutants commonly present in water sources.
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