化学
基质(水族馆)
合理设计
脂氧合酶
催化作用
脂肪酸
立体化学
位阻效应
烷基
生物化学
有机化学
酶
生物
材料科学
纳米技术
生态学
作者
Cuiping Pang,Song Liu,Guoqiang Zhang,Jingwen Zhou,Guocheng Du,Jianghua Li
标识
DOI:10.1016/j.enzmictec.2022.110120
摘要
Lipoxygenase (LOX) catalyzes the peroxidation of unsaturated fatty acids to produce hydroperoxides, which had been widely used in food, medicine and chemical industries due to its decoloration of food and conversion of renewable oils. Thus, higher catalytic activity and stability is desired for low-cost and expanded industrial applications of LOX. To improve the catalytic activity of LOX, a mutant library of Pseudomonas aeruginosa lipoxygenase (PaLOX) was firstly built via semi-rational design. The kcat/Km of mutant increased by 9.2-fold and the half-life (t1/2) at 50 °C increased by 4.6 min. Molecular dynamics (MD) simulation indicated that mutation reduced steric hindrance to substrate binding and increased the flexibility of the lid domain that covered the bound unsaturated fatty acid substrate. In addition, van der Waals interactions between the substrate and amino acid residues of the binding pocket increased and alkyl and Pi-alkyl interactions decreased, which might improve the flexibility and substrate binding affinity. These findings promoted understanding of the structure-function relationship of LOX and increase its catalytic efficiency and stability for further industrial application.
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