Structure-Guided Engineering of a Protease to Improve Its Activity under Cold Conditions

proteases commonly exhibit remarkably reduced activity under cold conditions. Herein, we employed a tailored combination of a loop engineering strategy and iterative saturation mutagenesis method to engineer two loops for substrate binding at the entrance of the substrate tunnel of a protease (bcPRO...

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Veröffentlicht in:Journal of agricultural and food chemistry 2023-08, Vol.71 (33), p.12528-12537
Hauptverfasser: Wang, Fenghua, Ma, Xiangyang, Sun, Ying, Guo, Enping, Shi, Chaoshuo, Yuan, Zhaoting, Li, Yu, Li, Qinggang, Lu, Fuping, Liu, Yihan
Format: Artikel
Sprache:eng
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Zusammenfassung:proteases commonly exhibit remarkably reduced activity under cold conditions. Herein, we employed a tailored combination of a loop engineering strategy and iterative saturation mutagenesis method to engineer two loops for substrate binding at the entrance of the substrate tunnel of a protease (bcPRO) from to improve its activity under cold conditions. The variant MT6 (G95P/A96D/S99W/S101T/P127S/S126T) exhibited an 18.3-fold greater catalytic efficiency than the wild-type (WT) variant at 10 °C. Molecular dynamics simulations and dynamic tunnel analysis indicated that the introduced mutations extended the substrate-binding pocket volume and facilitated extra interactions with the substrate, promoting catalysis through binding in a more favorable conformation. This study provides insights and strategies relevant to improving the activities of proteases and supplies a novel protease with enhanced activity under cold conditions for the food industry to maintain the initial flavor and color of food and reduce energy consumption.
ISSN:0021-8561
1520-5118
DOI:10.1021/acs.jafc.3c02338