A novel, noncatalytic carbohydrate-binding module displays specificity for galactose-containing polysaccharides through calcium-mediated oligomerization
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posted on 2024-03-12, 12:18 authored by C. Y. Montanier, M. A. S. Correia, B. Henrissat, C. M. G. A. Fontes, H. J. Gilbert, James FlintJames Flint, Y. Zhu, A. Basl���©, L. S. McKee, J. A. M. Prates, S. Polizzi, P. M. Coutinho, R. J. Lewis<p>The enzymic degradation of plant cell walls plays a central role in the carbon cycle and is of increasing environmental and industrial significance. The catalytic modules of enzymes that catalyze this process are generally appended to noncatalytic carbohydrate-binding modules (CBMs). CBMs potentiate the rate of catalysis by bringing their cognate enzymes into intimate contact with the target substrate.Apowerful plant cell wall-degrading system is the Clostridium thermocellum multienzyme complex, termed the cellulosome. Here, we identify a novel CBM (CtCBM62) within the large C. thermocellum cellulosomal protein Cthe-2193 (defined as CtXyl5A), which establishes a new CBM family. Phylogenetic analysis of CBM62 members indicates that a circular permutation occurred within the family. CtCBM62 binds to D-galactose and L-arabinopyranose in either anomeric configuration. The crystal structures of CtCBM62, in complex with oligosaccharides containing α- and β-galactose residues, show that the ligand-binding site in the β-sandwich protein is located in the loops that connect the two β-sheets. Specificity is conferred through numerous interactions with the axial O4 of the target sugars, a feature that distinguishes galactose and arabinose from the other major sugars located in plant cell walls. CtCBM62 displays tighter affinity for multivalent ligands compared with molecules containing single galactose residues, which is associated with precipitation of these complex carbohydrates. These avidity effects, which confer the targeting of polysaccharides, are mediated by calcium-dependent oligomerization of the CBM. © 2011 by The American Society for Biochemistry and Molecular Biology, Inc.</p>
History
School affiliated with
- Department of Life Sciences (Research Outputs)
Publication Title
Journal of Biological ChemistryVolume
286Issue
25Pages/Article Number
22499-22509Publisher
American Society for Biochemistry and Molecular BiologyExternal DOI
ISSN
0021-9258eISSN
1083-351XDate Submitted
2013-12-21Date Accepted
2013-12-21Date of First Publication
2013-12-21Date of Final Publication
2013-12-21ePrints ID
12455Usage metrics
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Keywords
Anomeric configurationarabinosearticleBacterial Proteinsbinding affinitybinding sitecalciumcarbohydrate binding proteinCarbohydrate-binding modulesCarbon cyclescatalysisCatalystsCatalytic modulesCell Surfacecell wallcellulosomeCellulosomesCircular permutationClostridium thermocellumComplex carbohydratescontrolled studyCrystallographyD-galactoseenzyme specificityEnzymesEnzymic degradationgalactoseGalactose residuesligand bindingLigand-binding sitesLigandsModelsMolecularmolecular phylogenyMultienzyme complexesMultivalent ligandsNon-catalyticnonhumannucleotide sequenceOligomerizationOligomersOrganic compoundsPhylogenetic analysisplant cellPlant cell culturePlant cell wallPlant cellspolysaccharidePolysaccharidespriority journalprotein CtCBM62protein CtXyl5Aprotein familyprotein localizationProtein Multimerizationprotein protein interactionprotein structureQuaternaryReceptorsSecondarySubstrate SpecificitySugarsunclassified drugX-Ray
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