Rebuilding the lid region from conformational and dynamic features to engineering applications of lipase in foods: Current status and future prospects

脂肪酶 南极洲假丝酵母 生化工程 蛋白质工程 化学 酯交换 催化作用 计算机科学 纳米技术 材料科学 生物化学 工程类
作者
Gang Chen,Imran Mahmood Khan,Wen‐Sen He,Yongxin Li,Peng Jin,Osvaldo H. Campanella,Haihua Zhang,Yanrong Huo,Yang Chen,Huqing Yang,Ming Miao
出处
期刊:Comprehensive Reviews in Food Science and Food Safety [Wiley]
卷期号:21 (3): 2688-2714 被引量:20
标识
DOI:10.1111/1541-4337.12965
摘要

The applications of lipases in esterification, amidation, and transesterification have broadened their potential in the production of fine compounds with high cumulative values. Mostly, the catalytic triad of lipases is covered by either one or two mobile peptides called the "lid" that control the substrate channel to the catalytic center. The lid holds unique conformational allostery via interfacial activation to regulate the dynamics and catalytic functions of lipases, thereby highlighting its importance in redesigning these enzymes for industrial applications. The structural characteristic of lipase, the dynamics of lids, and the roles of lid in lipase catalysis were summarized, providing opportunities for rebuilding lid region by biotechniques (e.g., metagenomic technology and protein engineering) and enzyme immobilization. The review focused on the advantages and disadvantages of strategies rebuilding the lid region. The main shortcomings of biotechnologies on lid rebuilding were discussed such as negative effects on lipase (e.g., a decrease of activity). Additionally, the main shortcomings (e.g., enzyme desorption at high temperatre) in immobilization on hydrophobic supports via interfacial action were presented. Solutions to the mentioned problems were proposed by combinations of computational design with biotechnologies, and improvements of lipase immobilization (e.g., immobilization protocols and support design). Finally, the review provides future perspectives about designing hyperfunctional lipases as biocatalysts in the food industry based on lid conformation and dynamics.
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