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Updated: Aug 10, 2026

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Synthesizing Amino Acids Modified with Reactive Carbonyls in Silico to Assess Structural Effects Using Molecular Dynamics Simulations
Published on: April 26, 2024
Computer-aided multi-shell electrostatic remodeling of BhS7Xyl for enhanced activity and Thermostability
Chunlin Tan1, Xin Yu1, Lanxi Sun2
1State Key Laboratory of Southwestern Chinese Medicine Resources, Innovative Institute of Chinese Medicine and Pharmacy, Chengdu University of Traditional Chinese Medicine, Chengdu, 611137, PR China.
International Journal of Biological Macromolecules
|August 8, 2026
Summary
Engineered xylanase shows improved activity and stability for biomass conversion. This enhanced enzyme efficiently produces xylose and xylooligosaccharides under harsh industrial conditions.
Area of Science:
- Biotechnology
- Enzyme Engineering
- Biomass Valorization
Background:
- Industrial xylanase applications require enzymes with high catalytic efficiency and stability under alkaline, high-temperature conditions.
- Many xylanases are rapidly inactivated in such environments, limiting their use in lignocellulosic biomass processing.
Purpose of the Study:
- To improve the catalytic performance and stability of the alkaline xylanase BhS7Xyl using a computationally guided rational-design strategy.
- To identify and engineer alkaline-sensitive and structurally unstable residues to enhance enzyme function.
Main Methods:
- Integrated constant-pH molecular dynamics, isothermal compressibility perturbation analysis, and ECNet-assisted fitness prediction.
- Employed a triple mutation strategy (H51R/D150N/E287K) based on computational predictions.
Main Results:
- The triple mutant H51R/D150N/E287K exhibited a 3.73-fold increase in specific activity and enhanced thermal and alkaline stability.
- Melting temperature increased by 8.76°C, half-life at pH 10.0 increased from 33.96 to 95.84 min, and thermal half-life at 75°C extended by 19.64-fold.
- The mutant demonstrated superior production of xylose and xylooligosaccharides from various xylan sources compared to the wild type.
Conclusions:
- Multi-shell electrostatic remodeling is an effective strategy for enhancing xylanase activity, alkaline tolerance, and thermal stability.
- The engineered xylanase shows significant potential for industrial applications in xylooligosaccharide production from lignocellulosic biomass.
