Institute of Microbiology, College of Life Science, Zhejiang University, Hangzhou 310058, China.
Enzyme Microb Technol. 2013 Dec 10;53(6-7):365-72. doi: 10.1016/j.enzmictec.2013.08.001. Epub 2013 Aug 16.
Rational design was applied to glucose 1-dehydrogenase (LsGDH) from Lysinibacillus sphaericus G10 to improve its thermal stability by introduction of disulfide bridges between subunits. One out of the eleven mutants, designated as DS255, displayed significantly enhanced thermal stability with considerable soluble expression and high specific activity. It was extremely stable at pH ranging from 4.5 to 10.5, as it retained nearly 100% activity after incubating at different buffers for 1h. Mutant DS255 also exhibited high thermostability, having a half-life of 9900min at 50°C, which was 1868-fold as that of its wild type. Moreover, both of the increased free energy of denaturation and decreased entropy of denaturation of DS255 suggested that the enzyme structure was stabilized by the engineered disulfide bonds. On account of its robust stability, mutant DS255 would be a competitive candidate in practical applications of chiral chemicals synthesis, biofuel cells and glucose biosensors.
理性设计被应用于球形节杆菌(Lysinibacillus sphaericus G10)来源的葡萄糖 1-脱氢酶(LsGDH),通过在亚基之间引入二硫键来提高其热稳定性。在十一个突变体中,有一个突变体(命名为 DS255)表现出显著增强的热稳定性,同时具有相当高的可溶性表达和高比活性。它在 pH 值范围为 4.5 到 10.5 时极为稳定,在不同缓冲液中孵育 1 小时后保留了近 100%的活性。突变体 DS255 还表现出很高的热稳定性,在 50°C 时半衰期为 9900min,是其野生型的 1868 倍。此外,DS255 的增加的变性自由能和降低的变性熵都表明酶结构通过工程化的二硫键得到了稳定。由于其强大的稳定性,突变体 DS255 将成为手性化学品合成、生物燃料电池和葡萄糖生物传感器等实际应用中的有竞争力的候选者。