Structural basis of catalysis and substrate recognition by the NAD(H)-dependent α-d-glucuronidase from the glycoside hydrolase family 4.
Apoenzymes
/ chemistry
Bacterial Proteins
/ chemistry
Catalysis
Catalytic Domain
Crystallography, X-Ray
Dithiothreitol
/ metabolism
Glucuronic Acid
/ chemistry
Glycoside Hydrolases
/ metabolism
Holoenzymes
/ chemistry
Kinetics
Manganese
/ metabolism
Models, Molecular
Multigene Family
Mutagenesis, Site-Directed
NAD
/ metabolism
Protein Binding
Protein Conformation
Protein Structure, Secondary
Recombinant Proteins
/ chemistry
Structure-Activity Relationship
Substrate Specificity
Thermotoga maritima
/ enzymology
NAD-dependent
crystallography
enzyme–substrate interactions
glycoside hydrolase
molecular mechanisms
Journal
The Biochemical journal
ISSN: 1470-8728
Titre abrégé: Biochem J
Pays: England
ID NLM: 2984726R
Informations de publication
Date de publication:
26 02 2021
26 02 2021
Historique:
received:
22
10
2020
revised:
03
02
2021
accepted:
10
02
2021
pubmed:
11
2
2021
medline:
22
6
2021
entrez:
10
2
2021
Statut:
ppublish
Résumé
Members of the glycoside hydrolase family 4 (GH4) employ an unusual glycosidic bond cleavage mechanism utilizing NAD(H) and a divalent metal ion, under reducing conditions. These enzymes act upon a diverse range of glycosides, and unlike most other GH families, homologs here are known to accommodate both α- and β-anomeric specificities within the same active site. Here, we report the catalytic properties and the crystal structures of TmAgu4B, an α-d-glucuronidase from the hyperthermophile Thermotoga maritima. The structures in three different states include the apo form, the NADH bound holo form, and the ternary complex with NADH and the reaction product d-glucuronic acid, at 2.15, 1.97 and 1.85 Å resolutions, respectively. These structures reveal the step-wise route of conformational changes required in the active site to achieve the catalytically competent state, and illustrate the direct role of residues that determine the reaction mechanism. Furthermore, a structural transition of a helical region in the active site to a turn geometry resulting in the rearrangement of a unique arginine residue governs the exclusive glucopyranosiduronic acid recognition in TmAgu4B. Mutational studies show that modifications of the glycone binding site geometry lead to catalytic failure and indicate overlapping roles of specific residues in catalysis and substrate recognition. The data highlight hitherto unreported molecular features and associated active site dynamics that determine the structure-function relationships within the unique GH4 family.
Identifiants
pubmed: 33565573
pii: 227832
doi: 10.1042/BCJ20200824
doi:
Substances chimiques
Apoenzymes
0
Bacterial Proteins
0
Holoenzymes
0
Recombinant Proteins
0
NAD
0U46U6E8UK
Manganese
42Z2K6ZL8P
Glucuronic Acid
8A5D83Q4RW
Glycoside Hydrolases
EC 3.2.1.-
Dithiothreitol
T8ID5YZU6Y
Types de publication
Journal Article
Research Support, Non-U.S. Gov't
Langues
eng
Sous-ensembles de citation
IM
Pagination
943-959Informations de copyright
© 2021 The Author(s). Published by Portland Press Limited on behalf of the Biochemical Society.