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Updated: Aug 26, 2026

Surface Functionalization of Metal-Organic Frameworks for Improved Moisture Resistance
Published on: September 5, 2018
Optimizing acid stability and catalytic activity of Aspergillus flavus uricase (AfUOX) via surface charge engineering
Yuyue Li1, Danyao Zhou2, Qi Wen2
1School of Life Sciences, Yunnan Normal University, Kunming, 650500, Yunnan, China; Engineering Research Center for Valorization of Unique Bio-Resources in Yunnan, Ministry of Education, Kunming, 650500, Yunnan, China.
Abstract:
Uricase with improved acid stability is desirable for biomedical and biotechnological applications, yet enhancing the intrinsic acid tolerance of the enzyme while maintaining high catalytic activity remains a challenge. Here, we employed an integrated rational design strategy combining surface charge optimization and B-factor-guided engineering, followed by iterative combinatorial mutagenesis, to engineer urate oxidase from Aspergillus flavus. The final combinatorial variants retained 67% and 64% of their initial activity after 60 min of incubation at pH 4.5, respectively-substantially higher than the 25% retained by the wild-type enzyme-while also exhibiting enhanced specific activities. Mechanistic analyses combining biophysical characterization, molecular dynamics simulations, residue interaction network analysis, and electrostatic calculations suggested that the enhanced acid tolerance may be associated with surface charge redistribution and strengthened van der Waals interaction networks, which may help alleviate electrostatic-repulsion-driven conformational changes and contribute to conformational stabilization. The enhanced catalytic performance may be linked to improved substrate binding and restructuring of the substrate channel. These variants and the underlying design logic illustrate a practical approach to engineering acid-resistant uricase and other pH-sensitive oligomeric enzymes.
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