TY - JOUR
T1 - Structure-function relationships underlying the dual N-acetylmuramic and N-acetylglucosamine specificities of the bacterial peptidoglycan deacetylase PdaC
AU - Grifoll-Romero, Laia
AU - Sainz-Polo, María Angela
AU - Albesa-Jové, David
AU - Guerin, Marcelo E.
AU - Biarnés, Xevi
AU - Planas, Antoni
N1 - Funding Information:
2Recipient of a postdoctoral contract from MINECO under the “Juan de la Cierva Postdoctoral program” (FJCI-2015-25725).
Funding Information:
This work was supported by Ministerio de Econom?a, Industria y Competitividad, Gobierno de Espa?a (MINECO), Spain, Grants BFU2016 -77427-C2-1-R (to A. P.), BFU2016-77427-C2-2-R (to M. E. G.), and BFU2017-92223-EXP (to M. E. G.) and Severo Ochoa Excellence Accreditation SEV-2016-0644 (to M. E. G.) and Government of Catalonia Ag?ncia de Gesti? d'Ajuts Universitaris i de Recerca (AGAUR) Grant 2017SGR-727 (to A. P.) from the Generalitat de Catalunya. The authors declare that they have no conflicts of interest with the contents of this article.
Funding Information:
This work was supported by Ministerio de Economía, Industria y Competitivi-dad, Gobierno de España (MINECO), Spain, Grants BFU2016–77427-C2-1-R (to A. P.), BFU2016-77427-C2-2-R (to M. E. G.), and BFU2017-92223-EXP (to M. E. G.) and Severo Ochoa Excellence Accreditation SEV-2016-0644 (to M. E. G.) and Government of Catalonia Agència de Gestió d’Ajuts Univer-sitaris i de Recerca (AGAUR) Grant 2017SGR-727 (to A. P.) from the Gener-alitat de Catalunya. The authors declare that they have no conflicts of inter-est with the contents of this article.
Publisher Copyright:
© 2019 Grifoll-Romero et al. Published under exclusive license by The American Society for Biochemistry and Molecular Biology, Inc.
PY - 2019/12/13
Y1 - 2019/12/13
N2 - Bacillus subtilis PdaC (BsPdaC) is a membrane-bound, multidomain peptidoglycan N-deacetylase acting on N-acetylmuramic acid (MurNAc) residues and conferring lysozyme resistance to modified cell wall peptidoglycans. BsPdaC contains a C-terminal family 4 carbohydrate esterase (CE4) catalytic domain, but unlike other MurNAc deacetylases, BsPdaC also has GlcNAc deacetylase activity on chitooligosaccharides (COSs), characteristic of chitin deacetylases. To uncover the molecular basis of this dual activity, here we determined the X-ray structure of the BsPdaC CE4 domain at 1.54 Å resolution and analyzed its mode of action on COS substrates. We found that the minimal substrate is GlcNAc3 and that activity increases with the degree of glycan polymerization. COS deacetylation kinetics revealed that BsPdaC operates by a multiple-chain mechanism starting at the internal GlcNAc units and leading to deacetylation of all but the reducing-end GlcNAc residues. Interestingly, BsPdaC shares higher sequence similarity with the peptidoglycan GlcNAc deacetylase SpPgdaA than with other MurNAc deacetylases. Therefore, we used ligand-docking simulations to analyze the dual GlcNAc- and MurNAc-binding specificities of BsPdaC and compared them with those of SpPgdA and BsPdaA, representing peptidoglycan deacetylases highly specific for GlcNAc or MurNAc residues, respectively. BsPdaC retains the conserved Asp-His-His metal-binding triad characteristic of CE4 enzymes acting on GlcNAc residues, differing from MurNAc deacetylases that lack the metal-coordinating Asp residue. BsPdaC contains short loops similar to those in SpPgdA, resulting in an open binding cleft that can accommodate polymeric substrates. We propose that PdaC is the first member of a new subclass of peptidoglycan MurNAc deacetylases.
AB - Bacillus subtilis PdaC (BsPdaC) is a membrane-bound, multidomain peptidoglycan N-deacetylase acting on N-acetylmuramic acid (MurNAc) residues and conferring lysozyme resistance to modified cell wall peptidoglycans. BsPdaC contains a C-terminal family 4 carbohydrate esterase (CE4) catalytic domain, but unlike other MurNAc deacetylases, BsPdaC also has GlcNAc deacetylase activity on chitooligosaccharides (COSs), characteristic of chitin deacetylases. To uncover the molecular basis of this dual activity, here we determined the X-ray structure of the BsPdaC CE4 domain at 1.54 Å resolution and analyzed its mode of action on COS substrates. We found that the minimal substrate is GlcNAc3 and that activity increases with the degree of glycan polymerization. COS deacetylation kinetics revealed that BsPdaC operates by a multiple-chain mechanism starting at the internal GlcNAc units and leading to deacetylation of all but the reducing-end GlcNAc residues. Interestingly, BsPdaC shares higher sequence similarity with the peptidoglycan GlcNAc deacetylase SpPgdaA than with other MurNAc deacetylases. Therefore, we used ligand-docking simulations to analyze the dual GlcNAc- and MurNAc-binding specificities of BsPdaC and compared them with those of SpPgdA and BsPdaA, representing peptidoglycan deacetylases highly specific for GlcNAc or MurNAc residues, respectively. BsPdaC retains the conserved Asp-His-His metal-binding triad characteristic of CE4 enzymes acting on GlcNAc residues, differing from MurNAc deacetylases that lack the metal-coordinating Asp residue. BsPdaC contains short loops similar to those in SpPgdA, resulting in an open binding cleft that can accommodate polymeric substrates. We propose that PdaC is the first member of a new subclass of peptidoglycan MurNAc deacetylases.
KW - N-acetylglucosamine
KW - N-acetylmuramic acid
KW - Peptidoglycan
KW - Bacterial pathogenesis
KW - Cell wall
KW - Chitooligosaccharides
KW - Crystal structure
KW - Deacetylase
KW - Ligand-docking simulations
KW - Specificity
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UR - https://www.webofscience.com/api/gateway?GWVersion=2&SrcApp=pure_univeritat_ramon_llull&SrcAuth=WosAPI&KeyUT=WOS:000516527800011&DestLinkType=FullRecord&DestApp=WOS_CPL
U2 - 10.1074/jbc.RA119.009510
DO - 10.1074/jbc.RA119.009510
M3 - Article
C2 - 31690626
AN - SCOPUS:85076502809
SN - 0021-9258
VL - 294
SP - 19066
EP - 19080
JO - Journal of Biological Chemistry
JF - Journal of Biological Chemistry
IS - 50
ER -