Yuan Yue, Chen Chunshu, Wang Xueyan, Shen Shaonian, Guo Xiaoyu, Chen Xiaoyi, Yang Fan, Li Xianzhen
School of Biological Engineering, Dalian Polytechnic University, Ganjingziqu, Dalian, 116034, People's Republic of China.
Bioresour Bioprocess. 2022 Mar 21;9(1):27. doi: 10.1186/s40643-022-00519-1.
Improved understanding of cellulose swelling mechanism is beneficial for increasing the hydrolysis efficiency of cellulosic substrates. Here, we report a family 5 glycoside hydrolase ArCel5 isolated from the cellulose-gelatinizing fungus Arthrobotrys sp. CX1. ArCel5 exhibited low specific hydrolysis activity and high cellulose swelling capability, which suggested that this protein might function as an accessory protein. Homology modeling glycosylation detection revealed that ArCel5 is a multi-domain protein including a family 1 carbohydrate-binding module, a glycosylation linker, and a catalytic domain. The adsorption capacity, structural changes and hydrature index of filter paper treated by different ArCel5 mutants demonstrated that CBM1 and linker played an essential role in recognizing, binding and decrystallizing cellulosic substrates, which further encouraged the synergistic action between ArCel5 and cellulases. Notably, glycosylation modification further strengthened the function of the linker region. Overall, our study provides insight into the cellulose decrystallization mechanism by a novel accessory protein ArCel5 that will benefit future applications.
对纤维素膨胀机制的深入理解有助于提高纤维素底物的水解效率。在此,我们报道了一种从纤维素凝胶化真菌Arthrobotrys sp. CX1中分离出的5家族糖苷水解酶ArCel5。ArCel5表现出较低的比水解活性和较高的纤维素膨胀能力,这表明该蛋白可能作为一种辅助蛋白发挥作用。同源建模糖基化检测表明,ArCel5是一种多结构域蛋白,包括一个1家族碳水化合物结合模块、一个糖基化连接区和一个催化结构域。不同ArCel5突变体处理滤纸的吸附能力、结构变化和水化指数表明,CBM1和连接区在识别、结合和使纤维素底物去结晶方面起着至关重要的作用,这进一步促进了ArCel5与纤维素酶之间的协同作用。值得注意的是,糖基化修饰进一步增强了连接区的功能。总体而言,我们的研究通过一种新型辅助蛋白ArCel5深入了解了纤维素去结晶机制,这将有利于未来的应用。