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Published on: July 17, 2013
Penicillin-binding protein inactivation by human neutrophil myeloperoxidase
1Department of Medicine, University of Washington, Seattle 98195.
Abstract:
Myeloperoxidase (MPO), H2O2, and chloride comprise a potent antimicrobial system believed to contribute to the antimicrobial functions of neutrophils and monocytes. The mechanisms of microbicidal action are complex and not fully defined. This report describes the MPO-mediated inactivation, in Escherichia coli, Staphylococcus aureus, and Pseudomonas aeruginosa, of a class of cytoplasmic membrane enzymes (penicillin-binding proteins, PBPs) found in all eubacteria, that covalently bind beta-lactam antibiotics to their active sites with loss of enzymatic activity. Inactivation of "essential" PBPs, including PBP1-PBP3 of E. coli, leads to unbalanced bacterial growth and cell death. MPO treatment of bacteria was associated with loss of penicillin binding by PBPs, strongly suggesting PBP inactivation. In E. coli, PBP inactivation was most rapid with PBP3, where the rate of decline in binding activity approximated but did not equal loss of viability. Changes in E. coli morphology (elongation), observed just before bacteriolysis, were consistent with early predominant inactivation of PBP3. We conclude that inactivation of essential PBPs is sufficient to account for an important fraction of MPO-mediated bacterial action. This feature of MPO action interestingly recapitulates an antibacterial strategy evolved by beta-lactam-producing molds that must compete with bacteria for limited ecologic niches.
Insights
Myeloperoxidase (MPO) inactivates essential bacterial enzymes called penicillin-binding proteins (PBPs), leading to cell death. This mechanism contributes significantly to MPO
Area of Science:
- Microbiology
- Biochemistry
- Immunology
Background:
- Neutrophils and monocytes utilize a potent antimicrobial system comprising myeloperoxidase (MPO), hydrogen peroxide (H2O2), and chloride.
- The precise mechanisms underlying MPO's microbicidal actions remain incompletely understood.
Purpose of the Study:
- To investigate the MPO-mediated inactivation of penicillin-binding proteins (PBPs) in bacteria.
- To determine if PBP inactivation contributes to the antimicrobial activity of MPO.
Main Methods:
- Treatment of Escherichia coli, Staphylococcus aureus, and Pseudomonas aeruginosa with MPO.
- Assessing the binding of beta-lactam antibiotics to PBPs post-MPO treatment.
- Monitoring bacterial viability and morphology changes.
Main Results:
- MPO treatment resulted in the inactivation of PBPs across tested bacterial species.
- Inactivation of essential PBPs, particularly PBP3 in E. coli, correlated with bacterial cell death.
- Observed morphological changes in E. coli, such as elongation, preceded lysis and were consistent with PBP3 inactivation.
Conclusions:
- Inactivation of essential PBPs is a significant mechanism contributing to MPO-mediated bacterial killing.
- This MPO function mimics the antibacterial strategy employed by beta-lactam-producing molds.
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