Laccase-based biocatalytic systems application in sustainable degradation of pharmaceutically active contaminants

漆酶 生物修复 化学 环境化学 污染 生化工程 水生生态系统 水生环境 降级(电信) 生物 生态学 生物化学 计算机科学 电信 工程类
作者
Anil Kumar Singh,Pedro Abellanas-Pérez,Diandra de Andrades,Iris Cornet,Roberto Fernández‐Lafuente,Muhammad Bilal
出处
期刊:Journal of Hazardous Materials [Elsevier BV]
卷期号:485: 136803-136803 被引量:47
标识
DOI:10.1016/j.jhazmat.2024.136803
摘要

The outflow of pharmaceutically active chemicals (PhACs) exerts a negative impact on biological systems even at extremely low concentrations. For instance, enormous threats to human and aquatic species have resulted from the widespread use of antibiotics in ecosystems, which stimulate the emergence and formation of antibiotic-resistant bacterial species and associated genes. Additionally, it is challenging to eliminate these PhACs by employing conventional physicochemical water treatment techniques. Enzymatic approaches, including laccase, have been identified as a promising alternative to eliminate a broad array of PhACs from water matrices. However, their application in environmental bioremediation is hindered by several factors, including the enzyme's stability and its location in the aqueous environment. Such obstacles may be surmounted by employing laccase immobilization, which enables enhanced stability (including inactivation caused by the substrate), and thus improved catalysis. This review emphasizes the potential hazards of PhACs to aquatic organisms within the detection concentration range of ngL -1 to µgL -1 , as well as the deployment of laccase-based multifunctional biocatalytic systems for the environmentally friendly mitigation of anticancer drugs, analgesics/NSAIDs, antibiotics, antiepileptic agents, and beta blockers as micropollutants. This approach could reduce the underlying toxicological consequences. In addition, current developments, potential applications, and viewpoints have focused on computer-assisted investigations of laccase-PhACs binding at enzyme cavities and degradability prediction. • A wide array of pharmaceutically active micropollutants exists in water bodies. • Pharmaceutically active micropollutants exhibit toxicological consequences. • Laccase-based biocatalytic systems are efficient for pharmaceutical degradation. • Enzyme immobilization could be implemented to enhance environmental remediation applicability. • Computer-assisted methods for degradability prediction of new pharmaceuticals are reviewed.
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