Ternary deep eutectic solvents simultaneously enhance the activity, thermal stability, and selectivity of CALB for
Daoming Li1, Gaimiao Li1, Jiandong Wang2
1School of Food Science and Engineering, Shaanxi University of Science and Technology, Xi'an 710021, Shannxi, China.
Abstract:
Solvent engineering plays a crucial role in improving lipase performance in non-aqueous biocatalytic systems, particularly for the efficient and selective production of functional lipids. In this study, choline chloride-glycerol-urea ternary deep eutectic solvents (TDESs) were constructed to regulate the catalytic behavior of Candida antarctica lipase B (CALB), and the relationships between solvent physicochemical properties, enzyme conformation, and catalytic performance were systematically evaluated through enzymatic assays, fluorescence spectroscopy, and molecular dynamics simulations. Compared with binary DES and solvent free systems, TDESs exhibited lower water activity, tunable viscosity, and strengthened hydrogen-bonding networks, providing a more stable microenvironment for CALB. The optimal ChCl:Gly:U (1:1:1) system enhanced catalytic activity by 2.8-fold and retained over 80% residual activity after thermal treatment. Simulation results indicated reduced RMSD, RMSF, and SASA values, suggesting improved structural compactness. Subtle changes in interaction behavior within the catalytic triad (Ser105-His224-Asp187) were also observed, indicating localized modulation of active-site dynamics that may contribute to enhanced flexibility. In esterification, ChCl:Gly:U increased DAG content to 61% and reduced MAG content to <15% (vs. 45% DAG and 32% MAG in the solvent free system). In addition, the selectivity of DAG formation in TDES systems increased significantly from 57.66% to 73.61%. These findings demonstrate that rationally designed TDESs effectively enhance CALB activity, stability, and DAG selectivity, providing a feasible and sustainable strategy for enzymatic lipid modification.
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