Rational design of CYP120A1 variants and eco-friendly alternatives for enhanced bioremediation of sulfonamide antibiotics

IF 8.1 Q1 ENGINEERING, ENVIRONMENTAL Journal of hazardous materials letters Pub Date : 2025-03-26 DOI:10.1016/j.hazl.2025.100151
Miaomiao Li , Xu Guan , Xiaoxia Yu , Ledong Zhu , Ruiming Zhang , Qingzhu Zhang , Wenxing Wang , Qiao Wang
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Abstract

Bioremediation mediated by cytochrome P450 enzymes represents an effective strategy for the removal of Sulfonamides (SAs). However, the inherent limitations in the thermostability and catalytic activity of wild-type enzymes result in suboptimal remediation efficiency. Therefore, the development of highly efficient degradative enzymes is crucial for mitigating SAs pollution. Additionally, identifying environmentally friendly alternatives with lower toxicity is beneficial for source control of SAs. This work adopts an integrated strategy that combines bioremediation and source control. Utilizing multiple computational strategies, we rationally designed and screened novel high-efficiency enzyme variants of CYP120A1 specifically targeting SAs degradation, and concurrently evaluated the molecular properties of pollutants to design new green alternatives. This study successfully identified 18 single-mutation enzyme candidates with enhanced thermostability and catalytic activity. Furthermore, we designed three green alternatives, SDZ-13, SDZ-19, and SDZ-27, which exhibit lower toxicity and significantly improved binding affinity with the degradative enzymes. However, accurate and rapid identification of mutation sites and practical application of eco-friendly molecular design remain significant challenges for future research. This work provides theoretical support for the development of efficient degradative enzymes and the design of sustainable alternative compounds, contributing to the advancement of emerging pollutants pollution control strategies.
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合理设计CYP120A1变异体及生态友好型替代物以增强磺胺类抗生素的生物修复
细胞色素P450酶介导的生物修复是去除磺胺类化合物的有效方法。然而,野生型酶在热稳定性和催化活性方面的固有局限性导致修复效率不理想。因此,开发高效的降解酶是缓解砷污染的关键。此外,寻找毒性较低的环境友好型替代品有助于控制砷的来源。这项工作采用了结合生物修复和源头控制的综合策略。利用多种计算策略,合理设计和筛选针对SAs降解的CYP120A1新型高效酶变体,同时评估污染物的分子特性,设计新的绿色替代品。本研究成功鉴定出18种具有较强热稳定性和催化活性的单突变候选酶。此外,我们设计了三种绿色替代品SDZ-13、SDZ-19和SDZ-27,它们具有较低的毒性,并显著提高了与降解酶的结合亲和力。然而,准确、快速地识别突变位点和生态分子设计的实际应用仍然是未来研究的重大挑战。这项工作为高效降解酶的开发和可持续替代化合物的设计提供了理论支持,有助于推进新兴污染物的污染控制策略。
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来源期刊
Journal of hazardous materials letters
Journal of hazardous materials letters Pollution, Health, Toxicology and Mutagenesis, Environmental Chemistry, Waste Management and Disposal, Environmental Engineering
CiteScore
10.30
自引率
0.00%
发文量
0
审稿时长
20 days
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