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Abstract

<jats:p>β-Glucosidases are essential for lignocellulosic biomass conversion, yet their industrial utility is limited by inhibition from glucose, the reaction product. Although glucose inhibition has been extensively documented, its molecular basis remains poorly understood. Here, we demonstrate that glucose inhibition in the GH1 β-glucosidase BglB from Paenibacillus polymyxa is mediated by multiple surface-exposed secondary binding sites (SBSs) that function as regulatory elements rather than passive glucose-binding patches. Kinetic analyses revealed a mixed mode of inhibition, with modest activation at low glucose concentrations followed by progressive inhibition at higher concentrations. Glucose association occurred through multiple SBSs in a concentration-dependent manner and induced localized rigidification, particularly at gatekeeper regions surrounding the active-site entrance. These surface interactions propagated through long-range coupling pathways, resulting in structural, energetic, and residue interaction network reorganization that reshaped the catalytic pocket. Functional interrogation of representative SBSs revealed distinct roles for individual sites. Mutation of a gatekeeper-associated SBS reduced local glucose association, increased glucose tolerance by more than 30%, and improved substrate affinity by approximately 38%, whereas disruption of a distal SBS compromised structural integrity and soluble protein production. Together, these findings establish a direct link between surface glucose recognition and active-site regulation, providing, to our knowledge, the first integrated evidence for the existence and functional significance of secondary glucose-binding sites in β-glucosidases. More broadly, this work identifies surface SBSs as promising targets for engineering glucose-tolerant and catalytically robust enzymes for biomass conversion and related biotechnological applications.</jats:p>

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Keywords

glucose inhibition sbss sites surface

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