4V27 image
Entry Detail
PDB ID:
4V27
Keywords:
Title:
Structure of the GH99 endo-alpha-mannanase from Bacteroides xylanisolvens in complex with mannose-alpha-1,3-isofagomine
Biological Source:
Source Organism:
Host Organism:
PDB Version:
Deposition Date:
2014-10-07
Release Date:
2014-12-24
Method Details:
Experimental Method:
Resolution:
1.90 Å
R-Value Free:
0.18
R-Value Work:
0.15
R-Value Observed:
0.15
Space Group:
I 4
Macromolecular Entities
Polymer Type:polypeptide(L)
Description:GLYCOSYL HYDROLASE FAMILY 71
Chain IDs:A
Chain Length:380
Number of Molecules:1
Biological Source:BACTEROIDES XYLANISOLVENS
Primary Citation
Structural and Kinetic Dissection of the Endo-Alpha-1,2-Mannanase Activity of Bacterial Gh99 Glycoside Hydrolases from Bacteroides Spp.
Chemistry 21 1966 ? (2015)
PMID: 25487964 DOI: 10.1002/CHEM.201405539

Abstact

Glycoside hydrolase family 99 (GH99) was created to categorize sequence-related glycosidases possessing endo-α-mannosidase activity: the cleavage of mannosidic linkages within eukaryotic N-glycan precursors (Glc1-3 Man9 GlcNAc2), releasing mono-, di- and triglucosylated-mannose (Glc1-3 -1,3-Man). GH99 family members have recently been implicated in the ability of Bacteroides spp., present within the gut microbiota, to metabolize fungal cell wall α-mannans, releasing α-1,3-mannobiose by hydrolysing αMan-1,3-αMan→1,2-αMan-1,2-αMan sequences within branches off the main α-1,6-mannan backbone. We report the development of a series of substrates and inhibitors, which we use to kinetically and structurally characterise this novel endo-α-1,2-mannanase activity of bacterial GH99 enzymes from Bacteroides thetaiotaomicron and xylanisolvens. These data reveal an approximate 5 kJ mol(-1) preference for mannose-configured substrates in the -2 subsite (relative to glucose), which inspired the development of a new inhibitor, α-mannopyranosyl-1,3-isofagomine (ManIFG), the most potent (bacterial) GH99 inhibitor reported to date. X-ray structures of ManIFG or a substrate in complex with wild-type or inactive mutants, respectively, of B. xylanisolvens GH99 reveal the structural basis for binding to D-mannose- rather than D-glucose-configured substrates.

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