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Biosensor for Detection of Antibiotic Resistant Staphylococcus Bacteria
Published on: May 8, 2013
Identification of Staphylococcus aureus Penicillin Binding Protein 4 (PBP4) Inhibitors
Mikaeel Young1, Danica J Walsh2, Elysia Masters3
1Department of Microbiology and Immunology, University of Rochester Medical Center, Rochester, NY 14642, USA.
Abstract:
Methicillin-resistant Staphylococcus aureus (MRSA) is a global healthcare concern. Such resistance has historically been attributed to the acquisition of mecA (or mecC), which encodes an alternative penicillin binding protein, PBP2a, with low β-lactam affinity. However, recent studies have indicated that penicillin binding protein 4 (PBP4) is also a critical determinant of S. aureus methicillin resistance, particularly among community-acquired MRSA strains. Thus, PBP4 has been considered an intriguing therapeutic target as corresponding inhibitors may restore MRSA β-lactam susceptibility. In addition to its role in antibiotic resistance, PBP4 has also recently been shown to be required for S. aureus cortical bone osteocyte lacuno-canalicular network (OLCN) invasion and colonization, providing the organism with a niche for re-occurring bone infection. From these perspectives, the development of PBP4 inhibitors may have tremendous impact as agents that both reverse methicillin resistance and inhibit the organism's ability to cause chronic osteomyelitis. Accordingly, using a whole-cell high-throughput screen of a 30,000-member small molecule chemical library and secondary assays we identified putative S. aureus PBP4 inhibitors. Quantitative reverse transcriptase mediated PCR and PBP4 binding assays revealed that hits could be further distinguished as compounds that reduce PBP4 expression versus compounds that are likely to affect the protein's function. We also showed that 6.25 µM (2.5 µg/mL) of the lead candidate, 9314848, reverses the organism's PBP4-dependent MRSA phenotype and inhibits its ability to traverse Microfluidic-Silicon Membrane-Canalicular Arrays (µSiM-CA) that model the OLCN orifice. Collectively, these molecules may represent promising potential as PBP4-inhibitors that can be further developed as adjuvants for the treatment of MRSA infections and/or osteomyelitis prophylactics.
Insights
New research identifies potential PBP4 inhibitors to combat Methicillin-resistant Staphylococcus aureus (MRSA) infections. These compounds may reverse antibiotic resistance and prevent chronic bone infections, offering a dual therapeutic approach for MRSA and osteomyelitis.
Area of Science:
- Microbiology and Infectious Diseases
- Drug Discovery and Development
- Molecular Biology
Background:
- Methicillin-resistant Staphylococcus aureus (MRSA) poses a significant global health threat, with resistance historically linked to the mecA gene.
- Emerging evidence highlights the crucial role of penicillin binding protein 4 (PBP4) in S. aureus methicillin resistance, particularly in community-acquired strains.
- PBP4 is also essential for S. aureus invasion and colonization of the bone osteocyte lacuno-canalicular network (OLCN), facilitating chronic osteomyelitis.
Purpose of the Study:
- To identify small molecules that inhibit Staphylococcus aureus PBP4.
- To explore the potential of PBP4 inhibitors as agents to reverse MRSA antibiotic resistance.
- To investigate PBP4 inhibitors as a strategy to prevent MRSA-induced chronic osteomyelitis.
Main Methods:
- A high-throughput screening of a 30,000-member small molecule library was employed to identify PBP4 inhibitors.
- Quantitative reverse transcriptase PCR and PBP4 binding assays were used to characterize inhibitor mechanisms (expression vs. function).
- Microfluidic-Silicon Membrane-Canalicular Arrays (µSiM-CA) were utilized to model OLCN invasion and assess inhibitor efficacy.
Main Results:
- Several putative S. aureus PBP4 inhibitors were identified through whole-cell screening.
- Compounds were differentiated based on their effect on PBP4 expression or protein function.
- The lead candidate, 9314848, at 6.25 µM, effectively reversed the PBP4-dependent MRSA phenotype and inhibited OLCN traversal.
Conclusions:
- PBP4 is a critical target for developing novel therapeutic strategies against MRSA.
- Identified PBP4 inhibitors demonstrate potential in both reversing antibiotic resistance and preventing chronic bone infections.
- These molecules represent promising candidates for further development as MRSA infection adjuvants or osteomyelitis prophylactics.

