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Biosensor for Detection of Antibiotic Resistant Staphylococcus Bacteria
Published on: May 8, 2013
Metabolic reprogramming and altered cell envelope characteristics in a pentose phosphate pathway mutant increases
Merve S Zeden1, Laura A Gallagher1, Emilio Bueno2
1Microbiology, School of Biological and Chemical Sciences, University of Galway, Galway, Ireland.
Abstract:
Central metabolic pathways control virulence and antibiotic resistance, and constitute potential targets for antibacterial drugs. In Staphylococcus aureus the role of the pentose phosphate pathway (PPP) remains largely unexplored. Mutation of the 6-phosphogluconolactonase gene pgl, which encodes the only non-essential enzyme in the oxidative phase of the PPP, significantly increased MRSA resistance to β-lactam antibiotics, particularly in chemically defined media with physiologically-relevant concentrations of glucose, and reduced oxacillin (OX)-induced lysis. Expression of the methicillin-resistance penicillin binding protein 2a and peptidoglycan architecture were unaffected. Carbon tracing and metabolomics revealed extensive metabolic reprogramming in the pgl mutant including increased flux to glycolysis, the TCA cycle, and several cell envelope precursors, which was consistent with increased β-lactam resistance. Morphologically, pgl mutant cells were smaller than wild-type with a thicker cell wall and ruffled surface when grown in OX. The pgl mutation reduced resistance to Congo Red, sulfamethoxazole and oxidative stress, and increased resistance to targocil, fosfomycin and vancomycin. Levels of lipoteichoic acids (LTAs) were significantly reduced in pgl, which may limit cell lysis, while the surface charge of pgl cells was significantly more positive. A vraG mutation in pgl reversed the increased OX resistance phenotype, and partially restored wild-type surface charge, but not LTA levels. Mutations in vraF or graRS from the VraFG/GraRS complex that regulates DltABCD-mediated d-alanylation of teichoic acids (which in turn controls β-lactam resistance and surface charge), also restored wild-type OX susceptibility. Collectively these data show that reduced levels of LTAs and OX-induced lysis combined with a VraFG/GraRS-dependent increase in cell surface positive charge are accompanied by significantly increased OX resistance in an MRSA pgl mutant.
Insights
The pentose phosphate pathway (PPP) enzyme Pgl impacts MRSA antibiotic resistance. A pgl mutation increases oxacillin resistance by altering cell wall components and surface charge, offering new antibacterial drug targets.
Area of Science:
- Microbiology
- Molecular Biology
- Biochemistry
Background:
- Central metabolic pathways are crucial for bacterial virulence and antibiotic resistance.
- The pentose phosphate pathway (PPP) in Staphylococcus aureus, particularly the 6-phosphogluconolactonase (Pgl) enzyme, is understudied regarding its role in antibiotic resistance.
Purpose of the Study:
- To investigate the function of the PPP, specifically the Pgl enzyme, in regulating MRSA (Methicillin-resistant Staphylococcus aureus) antibiotic resistance.
- To elucidate the metabolic and cellular changes associated with Pgl deficiency and their impact on oxacillin resistance.
Main Methods:
- Genetic mutation of the pgl gene in MRSA.
- Phenotypic analysis including antibiotic susceptibility testing, cell morphology, and lysis assays.
- Metabolomic analysis and carbon tracing to study metabolic flux.
- Genetic manipulation of resistance pathways (VraG, VraF, GraRS) to assess their interaction with pgl mutation.
Main Results:
- A pgl mutation significantly increased MRSA resistance to beta-lactam antibiotics, especially oxacillin, and reduced oxacillin-induced lysis.
- Metabolic reprogramming in the pgl mutant showed increased flux to glycolysis and the TCA cycle.
- Reduced lipoteichoic acid (LTA) levels and increased positive cell surface charge were observed in the pgl mutant.
- Genetic evidence implicated the VraFG/GraRS complex in mediating the oxacillin resistance phenotype associated with the pgl mutation.
Conclusions:
- The pgl gene plays a significant role in modulating MRSA's response to beta-lactam antibiotics.
- Altered LTA levels and increased positive surface charge, regulated by the VraFG/GraRS system, contribute to enhanced oxacillin resistance in MRSA lacking Pgl.
- Targeting the PPP offers a potential strategy for developing novel antibacterial therapies against MRSA.
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