Minium Kelsey, Knepp Zachary J, Sutton Morgan, Falls Tabatha, Bobb Sara, McKeefery Connor, Smith Kailynn, Root Kyle T
Department of Biochemistry, Chemistry, Engineering and Physics, Commonwealth University of Pennsylvania - Lock Haven, Lock Haven, Pennsylvania 17745, United States.
Department of Chemistry and Biochemistry, University of Denver, Denver, Colorado 80210, United States.
Biochemistry. 2025 Jun 3;64(11):2412-2428. doi: 10.1021/acs.biochem.5c00057. Epub 2025 May 20.
Thermophilic microbial lipases that retain activity under harsh conditions are a highly desirable tool for catalysis in numerous biosynthetic and biotechnological applications. In this study, a putative SGNH lipase gene, from (SGNH1), was overexpressed using a pMCSG7 plasmid in BL21(DE3) cells. The polyhistidine-tagged enzyme was expressed as inclusion bodies that were readily solubilized using Empigen BB detergent, and the protein was purified to homogeneity using immobilized metal affinity chromatography. The classification of SGNH1 as a thermophilic and alkaliphilic lipase was supported by its ability to optimally catalyze the hydrolysis of medium-length -nitrophenol esters at elevated temperature (55 °C) and pH (8-11). Evaluation of the SGNH1 structure generated by AlphaFold indicated that the catalytic domain was composed of a three-layered α/β/α fold, and molecular docking studies yielded insight into which residues proximal to the active site assist in stabilizing the ligand-enzyme interaction and substrate selectivity. Notably, SGNH1 was able to carry out ester hydrolysis in the presence of elevated concentrations of detergents, chaotropic reagents, and organic solvents, indicating that it would be suitable for employment in industrial reactions. Tryptophan fluorescence measurements in the presence of guanidine hydrochloride were employed to estimate the free energy of folding for SGNH1 along a reversible folding pathway. The properties of SGNH1 would be highly desirable for biotechnological applications.
在众多生物合成和生物技术应用中,能够在恶劣条件下保持活性的嗜热微生物脂肪酶是一种非常理想的催化工具。在本研究中,使用pMCSG7质粒在BL21(DE3)细胞中过表达了来自[具体来源未给出]的一个假定的SGNH脂肪酶基因(SGNH1)。带有多组氨酸标签的酶以包涵体形式表达,使用Empigen BB去污剂很容易将其溶解,然后通过固定化金属亲和色谱将蛋白质纯化至同质。SGNH1作为嗜热嗜碱脂肪酶的分类得到了支持,因为它能够在高温(55°C)和pH值(8 - 11)下最佳地催化中链对硝基苯酚酯的水解。对由AlphaFold生成的SGNH1结构的评估表明,催化结构域由三层α/β/α折叠组成,分子对接研究深入了解了活性位点附近哪些残基有助于稳定配体 - 酶相互作用和底物选择性。值得注意的是,SGNH1能够在高浓度去污剂、离液剂和有机溶剂存在的情况下进行酯水解,这表明它适用于工业反应。在盐酸胍存在下进行色氨酸荧光测量,以估计SGNH1沿可逆折叠途径的折叠自由能。SGNH1的特性对于生物技术应用来说将是非常理想的。