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Biosensor for Detection of Antibiotic Resistant Staphylococcus Bacteria
Published on: May 8, 2013
Altered PBP4 and GdpP functions synergistically mediate MRSA-like high-level, broad-spectrum β-lactam resistance in
Li-Yin Lai1,2, Nidhi Satishkumar1,2, Sasha Cardozo1,2
1Department of Microbial Pathogenesis, School of Dentistry, University of Maryland Baltimore, Baltimore, Maryland, USA.
Abstract:
Infections caused by Staphylococcus aureus are a leading cause of mortality worldwide. S. aureus infections caused by methicillin-resistant Staphylococcus aureus (MRSA) are particularly difficult to treat due to their resistance to next-generation β-lactams (NGBs) such as methicillin, nafcillin, and oxacillin. Resistance to NGBs, which is alternatively known as broad-spectrum β-lactam resistance, is classically mediated by PBP2a, a penicillin-binding protein encoded by mecA (or mecC) in MRSA. Thus, presence of mec genes among S. aureus spp. serves as the predictor of resistance to NGBs and facilitates determination of the proper therapeutic strategy for a staphylococcal infection. Although far less appreciated, mecA-deficient S. aureus strains can also exhibit NGB resistance. These strains, which are collectively termed as methicillin-resistant lacking mec (MRLM), are currently being identified in increasing numbers among natural resistant isolates of S. aureus. The mechanism/s through which MRLMs produce resistance to NGBs remains unknown. In this study, we demonstrate that mutations that alter PBP4 and GdpP functions, which are often present among MRLMs, can synergistically mediate resistance to NGBs. Furthermore, our results unravel that this novel mechanism potentially enables MRLMs to produce resistance toward NGBs at levels comparable to those of MRSAs. Our study provides a fresh new perspective about alternative mechanisms of NGB resistance, challenging our current overall understanding of high-level, broad-spectrum β-lactam resistance in S. aureus. It thus suggests reconsideration of the current approach toward diagnosis and treatment of β-lactam-resistant S. aureus infections.
Importance:
In Staphylococcus aureus, high-level, broad-spectrum resistance to β-lactams such as methicillin, also referred to as methicillin resistance, is largely attributed to mecA. This study demonstrates that S. aureus strains that lack mecA but contain mutations that functionally alter PBP4 and GdpP can also mediate high-level, broad-spectrum resistance to β-lactams. Resistance brought about by the synergistic action of functionally altered PBP4 and GdpP was phenotypically comparable to that displayed by mecA, as seen by increased bacterial survival in the presence of β-lactams. An analysis of mutations detected in naturally isolated strains of S. aureus revealed that a significant proportion of them had similar pbp4 and GGDEF domain protein containing phosphodiesterase (gdpP) mutations, making this study clinically significant. This study not only identifies important players of non-classical mechanisms of β-lactam resistance but also indicates reconsideration of current clinical diagnosis and treatment protocols of S. aureus infections.
Insights
Methicillin-resistant Staphylococcus aureus (MRSA) infections are hard to treat. This study finds that mutations in PBP4 and GdpP can cause similar resistance, suggesting new diagnostic and treatment approaches for Staphylococcus aureus infections.
Area of Science:
- Microbiology
- Molecular Biology
- Biochemistry
Background:
- Staphylococcus aureus infections, particularly those caused by methicillin-resistant strains (MRSA), pose a significant global health threat.
- Resistance to next-generation β-lactams (NGBs) in MRSA is typically mediated by the PBP2a protein, encoded by the mecA gene.
- mecA-deficient S. aureus (MRLM) strains are increasingly identified and can also exhibit NGB resistance, with the underlying mechanisms remaining unclear.
Purpose of the Study:
- To investigate the mechanisms of NGB resistance in mecA-deficient S. aureus (MRLM) strains.
- To determine if mutations in PBP4 and GdpP can confer high-level, broad-spectrum β-lactam resistance in S. aureus.
- To assess the clinical significance of these non-classical resistance mechanisms.
Main Methods:
- Analysis of mutations in PBP4 and GdpP in MRLM strains.
- Functional assessment of altered PBP4 and GdpP in mediating β-lactam resistance.
- Phenotypic comparison of resistance levels between MRLM and MRSA strains.
- Examination of mutation prevalence in naturally isolated S. aureus strains.
Main Results:
- Mutations altering PBP4 and GdpP functions can synergistically mediate resistance to NGBs in MRLM strains.
- This novel resistance mechanism confers levels of resistance comparable to those seen in MRSA.
- A significant proportion of naturally isolated S. aureus strains harbor mutations in pbp4 and gdpP.
Conclusions:
- The study identifies PBP4 and GdpP mutations as key players in alternative, non-classical mechanisms of β-lactam resistance in S. aureus.
- These findings challenge the current understanding of high-level, broad-spectrum β-lactam resistance in S. aureus.
- Reconsideration of diagnostic and therapeutic strategies for S. aureus infections is warranted, particularly for mecA-deficient strains.
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