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

化学 亲核细胞 共价键 残留物(化学) 氢键 结晶学 催化作用 立体化学 中子衍射 糖基化 活动站点 氢-氘交换 糖苷水解酶 活动中心 酶催化 蛋白质结构 异构化 反应中间体 侧链 糖苷 光化学 互变异构体 反应机理
作者
Naomine Yano,Toma Kashima,H. Arakawa,Chih-Chieh Lin,Akihiro Ishiwata,Hideo Namiki,Naoki Takaya,Katsunori Tanaka,Katsuhiro Kusaka,Shinya Fushinobu
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [National Academy of Sciences]
卷期号:122 (44): e2502828122-e2502828122
标识
DOI:10.1073/pnas.2502828122
摘要

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 β-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 Å. 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. Steady-state and pre-steady-state kinetic analyses of Y295F mutant supported the functional involvement of Tyr295 in both glycosylation and deglycosylation steps. 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.
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