Enzymatic Characterization of a Novel GH3 β-Glucosidase from Lentilactobacillus buchneri: EDTA-Mediated Enhancement of Thermostability
Hui Tang, Jinjian He, Can Li, Tongying Liu, Hao Wu, Mansheng Wang, Pengjun ShiBackground/Objectives: β-Glucosidases from lactic acid bacteria are valuable biocatalysts for carbohydrate conversion, flavour enhancement, and bioactive glycoside biotransformation. Although GH3 family enzymes have been characterized from several Lactobacillus species, no systematic study exists for Lentilactobacillus buchneri—a GRAS strain with plant-polysaccharide-degrading potential. This work aimed to clone, heterologously express, and comprehensively characterize a novel GH3 β-glucosidase (LbBgl3) from L. buchneri, with a particular focus on its catalytic properties, substrate profile, stability, and the unexpected EDTA-mediated thermostabilization mechanism. Methods: A novel β-glucosidase gene (LbBgl3) from L. buchneri was successfully expressed in Escherichia coli. Results: Biochemical characterization revealed that LbBgl3 is a cold-adapted, moderately acidophilic enzyme, exhibiting optimal activity at 37 °C and pH 5.0, with a maximum specific activity of 799.67 U·mg−1. Under optimal conditions, the enzyme displayed kinetic parameters toward pNPG with a Km of 1.697 mM, Vmax of 442.5 μmol·mg−1·min−1, kcat of 634.32 s−1, and kcat/Km of 373.79 mM−1·s−1. LbBgl3 exhibited high salt tolerance, with activity peaking at ~140% at 0.5 M NaCl and retaining ~68% at 2.0 M NaCl, while showing sensitivity to glucose inhibition. Notably, EDTA significantly enhanced both the activity and stability of LbBgl3. At 50 mM, the relative activity increased to 161%, and stability at 25 °C was prolonged. Molecular docking simulations suggested that EDTA binds near the substrate-binding pocket, forming hydrogen bonds with Ala57, Gln766, Ser768, and Lys770, thereby stabilizing the local conformation and enhancing thermal resistance. Conclusions: This study presents the first characterization of a GH3 β-glucosidase from L. buchneri and reveals a non-classical stabilizing effect of EDTA, offering valuable insights for enzyme engineering and biocatalytic applications.