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Updated: Aug 21, 2026

Unraveling Entropic Rate Acceleration Induced by Solvent Dynamics in Membrane Enzymes
Published on: January 16, 2016
Dual Engineering of the Hydrophobic Core and Functional Loop Reshapes the Conformational Energy Landscape for
Zhaoran Li1, Zhixin Dou1, Sha Zhao1
1State Key Laboratory of Microbial Technology, Institute of Microbial Technology, Shandong University, Qingdao266237, China.
Abstract:
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.
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