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评估嗜热-嗜碱菌 FNT 来源的多功能、高活性重组漆酶对抗生素的生物降解作用。

Evaluation of Antibiotic Biodegradation by a Versatile and Highly Active Recombinant Laccase from the Thermoalkaliphilic Bacterium sp. FNT.

机构信息

Fundación Biociencia, José Domingo Cañas 2280, Santiago 7750132, Chile.

Facultad de Química y Biología, Universidad de Santiago de Chile, Alameda 3363, Santiago 9170022, Chile.

出版信息

Biomolecules. 2024 Mar 19;14(3):369. doi: 10.3390/biom14030369.

Abstract

Laccases are industrially relevant enzymes that have gained great biotechnological importance. To date, most are of fungal and mesophilic origin; however, enzymes from extremophiles possess an even greater potential to withstand industrial conditions. In this study, we evaluate the potential of a recombinant spore-coat laccase from the thermoalkaliphilic bacterium sp. FNT (FNTL) to biodegrade antibiotics from the tetracycline, β-lactams, and fluoroquinolone families. This extremozyme was previously characterized as being thermostable and highly active in a wide range of temperatures (20-90 °C) and very versatile towards several structurally different substrates, including recalcitrant environmental pollutants such as PAHs and synthetic dyes. First, molecular docking analyses were employed for initial ligand affinity screening in the modeled active site of FNTL. Then, the in silico findings were experimentally tested with four highly consumed antibiotics, representatives of each family: tetracycline, oxytetracycline, amoxicillin, and ciprofloxacin. HPLC results indicate that FNTL with help of the natural redox mediator acetosyringone, can efficiently biodegrade 91, 90, and 82% of tetracycline (0.5 mg mL) in 24 h at 40, 30, and 20 °C, respectively, with no apparent ecotoxicity of the products on and . These results complement our previous studies, highlighting the potential of this extremozyme for application in wastewater bioremediation.

摘要

漆酶是具有重要生物技术意义的工业相关酶。迄今为止,大多数漆酶来自真菌和嗜温菌;然而,来自极端微生物的酶具有更大的承受工业条件的潜力。在这项研究中,我们评估了来自嗜热碱性细菌 sp. FNT 的重组孢子壳漆酶(FNTL)降解来自四环素、β-内酰胺类和氟喹诺酮类抗生素的潜力。该极端酶先前被表征为在 20-90°C 的广泛温度范围内具有热稳定性和高活性,并且对几种结构不同的底物非常通用,包括难处理的环境污染物,如多环芳烃和合成染料。首先,进行分子对接分析,以在 FNTL 的模型化活性位点中进行初始配体亲和力筛选。然后,使用四种高消耗抗生素,即每种家族的代表药物:四环素、土霉素、阿莫西林和环丙沙星,对计算机模拟结果进行了实验测试。HPLC 结果表明,FNTL 在天然氧化还原介体乙酰丁香酮的帮助下,分别在 40、30 和 20°C 下,24 小时内可有效降解 0.5mg/mL 四环素中的 91%、90%和 82%,产物对 和 无明显的生态毒性。这些结果补充了我们之前的研究,突出了这种极端酶在废水生物修复中的应用潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/460a/10968384/4330c0ead01d/biomolecules-14-00369-g001.jpg

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