Tong Lige, Zheng Jie, Wang Xiao, Wang Xiaolu, Huang Huoqing, Yang Haomeng, Tu Tao, Wang Yuan, Bai Yingguo, Yao Bin, Luo Huiying, Qin Xing
State Key Laboratory of Animal Nutrition, Institute of Animal Sciences, Chinese Academy of Agricultural Sciences, Beijing, 100193, China.
Biotechnol Biofuels. 2021 Oct 16;14(1):202. doi: 10.1186/s13068-021-02052-3.
Glucoamylase is an important industrial enzyme in the saccharification of starch into glucose. However, its poor thermostability and low catalytic efficiency limit its industrial saccharification applications. Therefore, improving these properties of glucoamylase is of great significance for saccharification in the starch industry.
In this study, a novel glucoamylase-encoding gene TlGa15B from the thermophilic fungus Talaromyces leycettanus JCM12802 was cloned and expressed in Pichia pastoris. The optimal temperature and pH of recombinant TlGa15B were 65 ℃ and 4.5, respectively. TlGa15B exhibited excellent thermostability at 60 ℃. To further improve thermostability without losing catalytic efficiency, TlGa15B-GA1 and TlGa15B-GA2 were designed by introducing disulfide bonds and optimizing residual charge-charge interactions in a region distant from the catalytic center. Compared with TlGa15B, mutants showed improved optimal temperature, melting temperature, specific activity, and catalytic efficiency. The mechanism underlying these improvements was elucidated through molecular dynamics simulation and dynamics cross-correlation matrices analysis. Besides, the performance of TlGa15B-GA2 was the same as that of the commercial glucoamylase during saccharification.
We provide an effective strategy to simultaneously improve both thermostability and catalytic efficiency of glucoamylase. The excellent thermostability and high catalytic efficiency of TlGa15B-GA2 make it a good candidate for industrial saccharification applications.
葡萄糖淀粉酶是淀粉糖化生成葡萄糖过程中的一种重要工业酶。然而,其较差的热稳定性和较低的催化效率限制了它在工业糖化中的应用。因此,改善葡萄糖淀粉酶的这些特性对淀粉工业的糖化具有重要意义。
在本研究中,从嗜热真菌莱氏篮状菌JCM12802中克隆了一个新的编码葡萄糖淀粉酶的基因TlGa15B,并在毕赤酵母中进行表达。重组TlGa15B的最适温度和pH分别为65℃和4.5。TlGa15B在60℃时表现出优异的热稳定性。为了在不损失催化效率的情况下进一步提高热稳定性,通过引入二硫键并优化远离催化中心区域的残余电荷-电荷相互作用,设计了TlGa15B-GA1和TlGa15B-GA2。与TlGa15B相比,突变体的最适温度、解链温度、比活性和催化效率均有所提高。通过分子动力学模拟和动力学交叉相关矩阵分析阐明了这些改善的潜在机制。此外,在糖化过程中,TlGa15B-GA2的性能与商业葡萄糖淀粉酶相同。
我们提供了一种同时提高葡萄糖淀粉酶热稳定性和催化效率的有效策略。TlGa15B-GA2优异的热稳定性和高催化效率使其成为工业糖化应用的良好候选者。