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克劳氏芽孢杆菌蛋白酶的表面活性剂耐受性进化,通过重塑底物进入通道来提高活性和稳定性。

Surfactant-tolerance evolution of Bacillus clausii protease for enhancing activity and stability by reshaping the substrate access tunnel.

作者信息

Ma Xiangyang, Wang Liya, Chen Jingyu, Guo Enping, Zheng Hongchen, Zhao Lei, Lu Fuping, Liu Yihan

机构信息

Key Laboratory of Industrial Fermentation Microbiology, Tianjin Key Laboratory of Industrial Microbiology, College of Biotechnology, Tianjin University of Science & Technology, Tianjin 300457, PR China.

Key Laboratory of Engineering Biology for Low-carbon Manufacturing, Tianjin Institute of Industrial Biotech-nology, Chinese Academy of Sciences, Tianjin 300308, PR China.

出版信息

Colloids Surf B Biointerfaces. 2025 Jan;245:114289. doi: 10.1016/j.colsurfb.2024.114289. Epub 2024 Oct 2.

Abstract

Alkali proteases are crucial in numerous industries, especially in the laundry industry, but their inactivation by surfactants limits their effectiveness. This study employed substrate access tunnel engineering to improve the performance of WT bcPRO in surfactants. By modifying the key residues in the substrate pocket, the best variant N212S showed higher stability and activity in both AES and LAS. Molecular dynamics (MD) simulations provided insights into the enhanced stability and activity. The Asn212Ser mutation weakened the anti-correlation motion, increased the number of hydrogen bonds between amino acid residues, and made the protein structure more compact, contributing to its stability. Additionally, the mutation extended the substrate access tunnel and enabled additional interactions with the substrate, enhancing its catalytic activity in surfactants. This study demonstrates a strategy for reshaping the substrate access tunnel to improve protease stability and activity in surfactant environments, offering a promising protease candidate for the laundry industry.

摘要

碱性蛋白酶在众多行业中至关重要,尤其是在洗衣行业,但它们被表面活性剂灭活限制了其有效性。本研究采用底物通道工程来提高野生型bcPRO在表面活性剂中的性能。通过修饰底物口袋中的关键残基,最佳变体N212S在AES和LAS中均表现出更高的稳定性和活性。分子动力学(MD)模拟为增强的稳定性和活性提供了见解。Asn212Ser突变减弱了反相关运动,增加了氨基酸残基之间的氢键数量,并使蛋白质结构更紧凑,有助于其稳定性。此外,该突变扩展了底物通道,并使得与底物有额外的相互作用,增强了其在表面活性剂中的催化活性。本研究展示了一种重塑底物通道以提高蛋白酶在表面活性剂环境中的稳定性和活性的策略,为洗衣行业提供了一个有前景的蛋白酶候选物。

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