ArticleCommunications biology2025
The structure and dynamics of water molecule networks underlie catalytic efficiency in a glycoside exo-hydrolase.
Article in Communications biology, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 6 papers.
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Who cites it
6 citing papers in PubMed.
- Production of Anti-melanogenic Glucosides via Molecular Docking-guided Biotransformation of p-hydroxyphenethyl anisate.Applied biochemistry and biotechnology · 2026Article
- It started off as a Cys, how did it end up like this? Identifying the extent of unmodelled oxidatively modified cysteines within the Protein Data Bank.Acta crystallographica. Section D, Structural biology · 2026Article
- Unveiling the Transgalactosylation Switch of a GH42 β‑Galactosidase from the Infant IsolateACS catalysis · 2026Article
- Dormancy Versus Germination: 3D Protein Modeling and Evolutionary Analyses Define the Roles of Genetic Variants in the Barley MKK3 Enzyme.International journal of molecular sciences · 2026Article
- Report of the 5th International Symposium on Frontiers in Molecular Science (ISFMS 2025).International journal of molecular sciences · 2025Article
- The structure and dynamics of water molecule networks underlie catalytic efficiency in a glycoside exo-hydrolase.Communications biology · 2025Article
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Authors and funding
6 authors.
Funding
Abstract
Glycoside hydrolases break glycosidic bonds by transferring a water molecule onto the glycosidic oxygen of carbohydrates, but on the nanoscale, the dynamics of water molecules remains unclear. We investigate the role of the non-nucleophilic E220 glutamate, essential for maintaining the water molecule network in a family 3 β-D-glucan glucohydrolase, but not involved directly in catalysis. Kinetic data disclose that the E220A mutant retains substrate poly-specificity but has drastically reduced catalytic efficiency compared to the wild-type. High-resolution structures in-complex with a hydrolytic product and a mechanism-based inhibitor reveal that in wild-type, the concatenated water molecules near acid/base E491 and neighbouring N219 and E220 form a harmonised network. In contrast, in the E220A mutant, this network is uncoordinated. Computational models of covalent complexes show that water flux through the wild-type protein correlates with high catalytic efficiency dissimilar to E220A, where this correlation is lost. Ancestral sequence reconstructions of family 3 enzymes divulge the evolutionary conservation of residues participating in water molecule networks, which underlie substrate-product-assisted processivity. Our findings provide a blueprint for the dynamics of catalysis mediated by hydrolytic enzymes, which could inspire bioengineering to create a sustainable bio-economy.
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