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Updated: Feb 3, 2026

Biosensor for Detection of Antibiotic Resistant Staphylococcus Bacteria
Published on: May 8, 2013
Structural and kinetic analyses of penicillin-binding protein 4 (PBP4)-mediated antibiotic resistance in
J Andrew N Alexander1,2, Som S Chatterjee3, Stephanie M Hamilton3
1From the Department of Biochemistry and Molecular Biology.
Abstract:
Methicillin-resistant Staphylococcus aureus (MRSA) causes serious community-acquired and nosocomial infections worldwide. MRSA strains are resistant to a variety of antibiotics, including the classic penicillin and cephalosporin classes of β-lactams, making them intractable to treatment. Although β-lactam resistance in MRSA has been ascribed to the acquisition and activity of penicillin-binding protein 2a (PBP2a, encoded by mecA), it has recently been observed that resistance can also be mediated by penicillin-binding protein 4 (PBP4). Previously, we have shown that broad-spectrum β-lactam resistance can arise following serial passaging of a mecA-negative COL strain of S. aureus, creating the CRB strain. This strain has two missense mutations in pbp4 and a mutation in the pbp4 promoter, both of which play an instrumental role in β-lactam resistance. To better understand PBP4's role in resistance, here we have characterized its kinetics and structure with clinically relevant β-lactam antibiotics. We present the first crystallographic PBP4 structures of apo and acyl-enzyme intermediate forms complexed with three late-generation β-lactam antibiotics: ceftobiprole, ceftaroline, and nafcillin. In parallel, we characterized the structural and kinetic effects of the PBP4 mutations present in the CRB strain. Localized within the transpeptidase active-site cleft, the two substitutions appear to have different effects depending on the drug. With ceftobiprole, the missense mutations impaired the K value 150-fold, decreasing the proportion of inhibited PBP4. However, ceftaroline resistance appeared to be mediated by other factors, possibly including mutation of the pbp4 promoter. Our findings provide evidence that S. aureus CRB has at least two PBP4-mediated resistance mechanisms.
Insights
Methicillin-resistant Staphylococcus aureus (MRSA) resistance can be mediated by penicillin-binding protein 4 (PBP4). This study reveals PBP4
Area of Science:
- Microbiology
- Structural Biology
- Drug Resistance
Background:
- Methicillin-resistant Staphylococcus aureus (MRSA) is a global health threat causing difficult-to-treat infections.
- While PBP2a (encoded by mecA) is the primary cause of MRSA's beta-lactam resistance, PBP4 is an emerging resistance factor.
- A mecA-negative MRSA strain (CRB) with mutations in pbp4 exhibits broad-spectrum beta-lactam resistance.
Purpose of the Study:
- To elucidate the structural and kinetic mechanisms of PBP4-mediated beta-lactam resistance.
- To characterize the interactions between PBP4 and clinically relevant beta-lactam antibiotics.
Main Methods:
- Crystallography was used to determine the structures of apo and acyl-enzyme intermediate forms of PBP4.
- PBP4 structures were solved in complex with ceftobiprole, ceftaroline, and nafcillin.
- Kinetic assays were performed to evaluate the effects of PBP4 mutations found in the CRB strain.
Main Results:
- The first crystallographic structures of PBP4 complexed with late-generation beta-lactams are presented.
- PBP4 mutations in the CRB strain significantly impaired binding and inhibition by ceftobiprole (150-fold decrease in K value).
- Resistance to ceftaroline may involve additional factors, potentially including pbp4 promoter mutations.
Conclusions:
- MRSA possesses at least two distinct PBP4-mediated resistance mechanisms.
- Understanding these mechanisms is crucial for developing novel therapeutic strategies against MRSA infections.
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