Zhaoran Li, Zhixin Dou, Sha Zhao, Mengyu Liu, Xiuyun Wu, Lushan Wang
The industrial application of enzyme catalysts is often constrained by the trade-off between thermostability and catalytic activity. Here, a region-focused engineering strategy was applied to a thermophilic GH10 xylanase to simultaneously improve both properties. The strategy integrates qProtein-guided hydrophobic cluster design for scaffold stabilization and dynamic loop analysis for active-site optimization. The resulting triple mutant A206S-N209D-F130L exhibited substantially improved thermostability, with a 5.79 °C increase in melting temperature and an 18.8-fold extension of the half-life at 60 °C. Its optimum temperature increased from 60 to 70 °C, accompanied by a 129.4% enhancement in catalytic activity at 70 °C relatively to the wild type. Molecular dynamics simulations indicated that these mutations reshape the conformational energy landscape by stabilizing hydrophobic packing and modulating loop dynamics. This study provides a generalizable framework for simultaneously improving enzyme stability and catalytic performance.