d-Allulose is a promising low-calorie rare sweetener; however, its industrial production is limited by the insufficient catalytic activity and thermostability of d-allulose 3-epimerases (DAEases). In this study, a combinatorial engineering strategy integrating lid-domain modulation and computational design was developed to improve enzyme performance. Lid engineering identified a key mutation (N120D) associated with enhanced catalytic turnover, while computational screening identified beneficial mutations (T69S, D71E, and S128A). The best mutant, T69S/D71E/N120D/S128A, exhibited a 1.9-fold increase in specific activity, a 2.2-fold improvement in catalytic efficiency, and a 34.1% longer half-life at 60 °C. It produced 152 g/L d-allulose from 500 g/L d-fructose within 3 h, achieving a 30.4% conversion yield under mildly acidic and high-temperature conditions. Mechanistic analyses suggested that improved performance resulted from the combinatorial effects of enhanced structural rigidity and altered lid-domain dynamics, consistent with improved catalytic turnover while maintaining thermostability. This work provides an efficient biocatalyst and a generalizable protein engineering strategy.
Qi-Chen Liu, Xinrui Tang, Wenjing Sun et al.· Journal of Agricultural and...· 0 citations
Simultaneously enhancing the thermostability and catalytic activity of acetylxylan esterases (AxEs) remains a significant challenge due to the inherent stability-activity trade-off. Here, a previously uncharacterized CE7 family acetylxylan esterase (TsAxE) from Thermoclostridium stercorarium was identified and engineered through a parallel multidimensional engineering strategy integrating consensus motif engineering, molecular docking, and interface engineering. The best-performing mutant BCF (D218L/D245P/G183Y) exhibited a 44.10 ± 0.44% increase in activity toward p-nitrophenyl acetate (pNPA). Notably, the thermostability of BCF was substantially improved, with the half-life (t1/2) at 60 °C extended from 0.63 ± 0.04 h to 43.82 ± 3.90 h. In addition, BCF showed improved catalytic efficiency toward p-nitrophenyl butyrate (pNPB). Molecular docking and molecular dynamics analyses suggested that these mutations may reshape substrate-binding pocket and improve structural stability. This study demonstrates the effectiveness of integrating complementary engineering strategies for the rational improvement of AxEs activity and thermostability.
Yujiao Tao, Xinrui Tang, Mei Zhao et al.· Journal of Agricultural and...· 0 citations
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