College of Food and Bioengineering, Jimei University, Xiamen 361021, China; Fujian Provincial Key Laboratory of Food Microbiology and Enzyme Engineering, Xiamen 361021, China.
College of Food and Bioengineering, Jimei University, Xiamen 361021, China.
Int J Biol Macromol. 2018 May;111:1032-1039. doi: 10.1016/j.ijbiomac.2018.01.134. Epub 2018 Jan 31.
PEGylation is one of the most promising and extensively studied strategies for improving the properties of proteins as well as enzymic physical and thermal stability. Phospholipase C, hydrolyzing the phospholipids offers tremendous applications in diverse fields. However, the poor thermal stability and higher cost of production have restricted its industrial application. This study focused on improving the stabilization of recombinant PLC by chemical modification with methoxypolyethylene glycol-Succinimidyl Succinate (SS-mPEG, MW 5000). PLC gene from isolate Bacillus cereus HSL3 was fused with SUMO, a novel small ubiquitin-related modifier expression vector and over expressed in Escherichia coli. The soluble fraction of SUMO-PLC reached 80% of the total recombinant protein. The enzyme exhibited maximum catalytic activity at 80 °C and was relatively thermostable at 40-70 °C. It showed extensive substrate specificity pattern and marked activity toward phosphatidylcholine, which made it a typical non-specific PLC for industrial purpose. SS-mPEG-PLC complex exhibited an enhanced thermal stability at 70-80 °C and the catalytic efficiency (K/K) had increased by 3.03 folds compared with free PLC. CD spectrum of SS-mPEG-PLC indicated a possible enzyme aggregation after chemical modification, which contributed to the higher thermostability of SS-mPEG-PLC. The increase of antiparallel β sheets in secondary structure also made it more stable than parallel β sheets. The presence of SS-mPEG chains on the enzyme molecule surface somewhat changed the binding rate of the substrates, leading to a significant improvement in catalytic efficiency. This study provided an insight into the addition of SS-mPEG for enhancing the industrial applications of phospholipase C at higher temperature.
聚乙二醇化是一种最有前途和广泛研究的策略,用于改善蛋白质以及酶的物理和热稳定性。水解磷脂的磷脂酶 C 在不同领域提供了巨大的应用。然而,较差的热稳定性和较高的生产成本限制了其工业应用。本研究专注于通过用甲氧基聚乙二醇琥珀酰亚胺(SS-mPEG,MW 5000)对重组 PLC 进行化学修饰来提高其稳定性。从分离的蜡状芽孢杆菌 HSL3 中获得的 PLC 基因与 SUMO 融合,SUMO 是一种新型的小泛素相关修饰物表达载体,并在大肠杆菌中过表达。SUMO-PLC 的可溶性部分达到总重组蛋白的 80%。该酶在 80°C 时表现出最大的催化活性,在 40-70°C 时相对热稳定。它表现出广泛的底物特异性模式,对磷脂酰胆碱表现出显著的活性,使其成为一种典型的非特异性 PLC,适用于工业用途。SS-mPEG-PLC 复合物在 70-80°C 时表现出增强的热稳定性,与游离 PLC 相比,催化效率(K/K)提高了 3.03 倍。SS-mPEG-PLC 的 CD 光谱表明,化学修饰后可能发生了酶聚集,这导致 SS-mPEG-PLC 具有更高的热稳定性。二级结构中反平行β片层的增加也使其比平行β片层更稳定。酶分子表面存在 SS-mPEG 链会改变底物的结合速率,从而显著提高催化效率。本研究为在较高温度下添加 SS-mPEG 以增强磷脂酶 C 的工业应用提供了深入了解。