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Functional Characterization of a Thermostable Amylosucrase from Bifidobacterium boum for Efficient Turanose Production.
Amylosucrase efficiently synthesizes sucrose isomers, including turanose, a low-glycemic functional sweetener. In this study, an amylosucrase from Bifidobacterium boum (BbAS) was identified through sequence-based analysis, which predicted favorable thermostability. Molecular dynamics simulations revealed that the B'-domain residues at the active-site entrance exhibited reduced flexibility in the turanose-bound state compared to the apo form, suggesting that turanose-induced stabilization of the active-site entrance contributes to the enhanced isomerization efficiency of BbAS. Experimental characterization confirmed these computational predictions by demonstrating optimal activity at 50 °C, while maintaining high residual activity during prolonged incubation at 45 °C. Kinetic analysis of BbAS with sucrose further revealed a biphasic non-Michaelian pattern, with a 3-fold increase in kcat,app above 49.1 mM. Notably, fructose supplementation shifted catalysis toward isomerization, achieving a turanose conversion rate of 61.3% while suppressing α-glucan formation to below 3.6%. These findings establish BbAS as a thermostable and industrially promising biocatalyst for efficient turanose production.
Evolutionary Adaptability Coupled with Computation-Driven Engineering for Thermostability Enhancement of a Deoxynivalenol-Detoxifying Fusion Enzyme
Deoxynivalenol (DON), a trichothecene mycotoxin commonly found in cereal grains and their derived products, poses significant risks to human and animal health. In previous work, a fusion enzyme composed of the dehydrogenase DADH and the aldo-keto reductase AKR13B3 was engineered to convert DON into the non-toxic 3-epi-DON in a single step. However, the poor thermal stability of this fusion enzyme limited its industrial application. In this study, EVcouplings and the GRAPE-WEB platform were utilized to identify key amino acid residues governing the thermal stability of the fusion enzyme AKR13B3–DADH. Through single-point mutation screening and the combination of beneficial mutation sites, a triple mutant M361L/T508Y/Y603F (M1) was obtained. The half-life of M1 at 50 °C reached about 500 min, representing a 16.4-fold increase compared with the wild type, while its catalytic activity increased by 2.7-fold. The apparent melting temperature increased by approximately 4 °C. Molecular dynamics simulations verified that the improved thermostability results from reduced conformational flexibility in key regions, enhanced structural packing, and a strengthened hydrogen bond network. These results demonstrate the successful development of a thermostable DON-detoxifying fusion enzyme and provide a practical basis for its industrial application.
Site-directed mutagenesis of α-L-rhamnosidase boosts its deglycosylation activity for the production of bioactive flavonoid glycosides.
The rational engineering of an α-L-rhamnosidase (DthRha) to address limitations and enhance its performance for flavonoid production highlights the R783A mutant as a robust and thermally stable biocatalyst with great potential for the sustainable production of bioactive flavonoids.
Multidimensional Computational Engineering of Pectate Lyase for Enhanced Thermostability and Moderately Improved Catalytic Efficiency.
This study provides a practical strategy for engineering thermostable pectate lyases with improved catalytic performance by developing a multidimensional consensus computational framework integrating sequence conservation, structural dynamics, and thermodynamic prediction to identify functional mutation hotspots in PcPel1834.
Structure-informed engineering of a laccase with enhanced catalytic activity and thermostability for facilitating lignocellulosic biomass saccharification.
Lignocellulose is an abundant renewable feedstock for biofuels and value-added bioproducts, yet its efficient bioconversion is hindered by the recalcitrant lignin barrier. While laccases show great potential for lignin modification and delignification, their limited thermostability restricts their application in high-temperature lignocellulose biorefinery processes. To address this constraint, an integrated computational engineering strategy was employed to rationally improve the thermostability and catalytic performance of a laccase from Bacillus aryabhattai TCCC 11368. The optimal variant, S281E/N387D, obtained through the combination of FireProt, PROSS, and supercharge-based engineering, exhibited enhanced thermal stability and catalytic efficiency. Its half-life at 60 °C increased 3.7-fold to 330 min compared with the wild type, accompanied by a 35.4% improvement in catalytic efficiency (kcat/Km). Structural analysis suggested that the improved performance may result from enhanced hydrogen-bond networks, strengthened electrostatic interactions, improved hydrophobic packing, and optimized substrate-binding interactions, which collectively contribute to its enhanced capability in lignocellulosic biomass saccharification. Under optimized conditions, enzymatic treatment of wheat straw using the S281E/N387D variant combined with cellulase yielded 8.63 mg/mL reducing sugars, representing a 10.86% increase over the wild-type laccase treatment. This study provides an effective computational framework for developing robust laccases and demonstrates their potential for improving lignocellulosic biomass conversion in biorefinery applications.
Computer-aided multi-shell electrostatic remodeling of BhS7Xyl for enhanced activity and Thermostability.
Xylanases with high catalytic efficiency and environmental robustness are important for lignocellulosic biomass valorization, but many enzymes are rapidly inactivated under the alkaline and high-temperature conditions used in industrial processes. In this study, a computationally guided rational-design strategy was developed to improve the catalytic performance and stability of the alkaline xylanase BhS7Xyl. Constant-pH molecular dynamics, isothermal compressibility perturbation analysis, and ECNet-assisted fitness prediction were integrated to identify alkaline-sensitive and structurally unstable residues for engineering. The triple mutant H51R/D150N/E287K showed the best overall performance, with a specific activity of 1045.29 U/mg, representing a 3.73-fold increase compared with the wild type. Its melting temperature increased from 55.82 °C to 64.58 °C, while its half-life at pH 10.0 increased from 33.96 to 95.84 min. The thermal half-life at 75 °C was extended from 10.97 to 215.42 min, corresponding to a 19.64-fold improvement. Structural analyses suggested that the improved performance of H51R/D150N/E287K was associated with a more continuous xylohexaose-binding interface, increased hydrogen-bonding contacts, additional electrostatic/polar interactions, strengthened local interaction networks and enhanced dissipation of local thermal perturbation. Under optimized hydrolysis conditions, the triple mutant produced higher levels of xylose and xylooligosaccharides from standard xylan, corn cob xylan, and hardwood pulp xylan than the wild type. These work demonstrates that multi-shell electrostatic remodeling is a useful strategy for improving the activity, alkaline tolerance, and thermal stability of xylanase for xylooligosaccharide production.