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Ishiwata, A.

Publications and source records attributed to Ishiwata, A..

2 recordsLinked to original sources

Neutron crystallography of the covalent intermediate of β-glucosidase reveals remodeling of the catalytic center

Anomer-retaining glycoside hydrolases (GHs) generally catalyze a double displacement reaction via a covalent intermediate; however, neutron crystallography of glycoside ligand-bound states has not been performed. In this study, we investigated {beta}-glucosidase Td2F2 from GH family 1 as a model enzyme for anomer-retaining GHs. We determined joint X-ray/neutron structures of Td2F2 in ligand-free form, covalent intermediate with a 2-deoxy-2-fluoro glucoside (2F-Glc) inhibitor, and glucose product complex using hydrogen/deuterium-exchanged crystals at room temperature, with neutron diffraction resolutions of 1.80-1.70 [A]. Extensive hydrogen bonds recognizing the hydroxy groups of 2F-Glc were identified, along with the positions of deuterium atoms. The acid/base catalyst residue Glu166 was anchored by a hydrogen bond network pivoted by Asn293. Tyr295 forms a hydrogen bond with the catalytic nucleophile residue Glu352 in the ligand-free and glucose complex forms, while the active center undergoes significant reorganization, including side chain displacements of Glu352 and Tyr295, as well as the incorporation of a water molecule. An alternative conformation of Tyr295 was observed in the 2F-Glc structure at room temperature, suggesting its role in positioning the nucleophilic water during the deglycosylation step. The tyrosine hydrogen bonded to the nucleophile is also conserved in many other anomer-retaining GH families, underscoring its importance in catalysis. Based on the deuterium/hydrogen positions determined from neutron structures, we proposed a detailed reaction mechanism for Td2F2. Significance StatementGlycoside hydrolases perform diverse functions in organisms, with over 180 known enzyme families. Although hydrogen bonds and proton transfer play important roles in enzymatic reactions, hydrogen atoms are generally invisible in macromolecular X-ray crystallography. In anomer-retaining glycoside hydrolases, general acid/base catalysis and the formation and hydrolysis of a covalent glycosyl-enzyme intermediate have been postulated. Here, we report neutron crystal structures of a {beta}-glucosidase, where hydrogen and deuterium atoms were visualized at high resolution. An intricate hydrogen-bonding network and remarkable remodeling at the catalytic center were observed during covalent intermediate formation, revealing a detailed catalytic mechanism. The enzyme belongs to glycoside hydrolase family 1 and represents numerous enzymes employing the anomer-retaining mechanism.

biochemistry↗

Genetic and functional diversity of beta-N-acetylgalactosamine residue-targeting glycosidases expanded by deep-sea metagenome

{beta}-N-Acetylgalactosamine-containing glycans play essential roles in several biological processes, including cell adhesion, signal transduction, and immune responses. {beta}-N-Acetylgalactosaminidases hydrolyze {beta}-N-acetylgalactosamine linkages of various glycoconjugates. However, their biological significance remains ambiguous, primarily because only one type of enzyme, exo-{beta}-N-acetylgalactosaminidases that specifically act on {beta}-N-acetylgalactosamine residues, has been documented so far. In this study, we identified three novel glycoside hydrolase families distributed among all three domains of life and characterized eight novel {beta}-N-acetylgalactosaminidases and {beta}-N-acetylhexosaminidase through sequence-based screening of deep-sea metagenomes and subsequent searching of public protein databases. Despite low sequence similarity, the crystal structures of these enzymes demonstrate that all enzymes share a prototype structure and diversify their substrate specificities (endo-, dual-endo/exo-, and exo-) through the accumulation of mutations and insertional amino acid sequences. The diverse {beta}-N-acetylgalactosaminidases reported in this study could facilitate the comprehension of their structures and functions and present novel evolutionary pathways for expanding their substrate specificity.

biochemistry↗