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Mechanistic studies on N-acetylmuramic acid 6-phosphate hydrolase (MurQ): an etherase involved in peptidoglycan
Timin Hadi1, Ulrike Dahl, Christoph Mayer
1Department of Chemistry, University of British Columbia, Vancouver, British Columbia, Canada V6T 1Z1.
Abstract:
Peptidoglycan recycling is a process in which bacteria import cell wall degradation products and incorporate them back into either peptidoglycan biosynthesis or basic metabolic pathways. The enzyme MurQ is an N-acetylmuramic acid 6-phosphate (MurNAc 6-phosphate) hydrolase (or etherase) that hydrolyzes the lactyl side chain from MurNAc 6-phosphate and generates GlcNAc 6-phosphate. This study supports a mechanism involving the syn elimination of lactate to give an alpha,beta-unsaturated aldehyde with (E)-stereochemistry, followed by the syn addition of water to give product. The observation of both a kinetic isotope effect slowing the reaction of [2-(2)H]MurNAc 6-phosphate and the incorporation of solvent-derived deuterium into C2 of the product indicates that the C2-H bond is cleaved during catalysis. The observation that the solvent-derived (18)O isotope is incorporated into the C3 position of the product, but not the C1 position, provides evidence of the cleavage of the C3-O bond and argues against imine formation. The finding that 3-chloro-3-deoxy-GlcNAc 6-phosphate serves as an alternate substrate is also consistent with an elimination-addition mechanism. Upon extended incubations of MurQ with GlcNAc 6-phosphate, the alpha,beta-unsaturated aldehydic intermediate accumulates in solution, and (1)H NMR analysis indicates it exists as the ring-closed form of the (E)-alkene. A structural model is developed for the Escherichia coli MurQ and is compared to that of the structural homologue glucosamine-6-phosphate synthase. Putative active site acid/base residues are probed by mutagenesis, and Glu83 and Glu114 are found to be crucial for catalysis. The Glu83Ala mutant is essentially inactive as an etherase yet is capable of exchanging the C2 proton of substrate with solvent-derived deuterium. This suggests that Glu83 may function as the acidic residue that protonates the departing lactate.
Insights
Peptidoglycan recycling involves bacteria reusing cell wall components. The enzyme MurQ, crucial for this process, breaks down N-acetylmuramic acid 6-phosphate via an elimination-addition mechanism, generating GlcNAc 6-phosphate.
Area of Science:
- Biochemistry
- Microbiology
- Enzymology
Background:
- Peptidoglycan recycling is essential for bacterial cell wall homeostasis.
- The enzyme MurQ plays a key role in processing N-acetylmuramic acid 6-phosphate (MurNAc 6-phosphate).
Purpose of the Study:
- To elucidate the catalytic mechanism of the MurQ enzyme.
- To investigate the substrate hydrolysis and product formation pathways.
Main Methods:
- Kinetic isotope effect studies using deuterated substrates.
- Solvent isotope labeling with (18)O.
- Mutagenesis of putative active site residues (Glu83, Glu114).
- NMR analysis of reaction intermediates.
Main Results:
- MurQ catalyzes MurNAc 6-phosphate hydrolysis via a syn elimination-addition mechanism, forming an (E)-alpha,beta-unsaturated aldehyde intermediate.
- Evidence supports cleavage of the C2-H and C3-O bonds, with water addition to the intermediate.
- Mutagenesis revealed Glu83 and Glu114 as critical for catalysis, with Glu83 potentially acting as the catalytic acid.
Conclusions:
- The study clarifies the MurQ enzymatic mechanism in peptidoglycan recycling.
- Identifies key active site residues involved in the hydrolysis reaction.
- Provides insights into bacterial cell wall metabolism and potential drug targets.
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