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Quantifying the Cytotoxicity of Staphylococcus aureus Against Human Polymorphonuclear Leukocytes
Published on: January 3, 2020
Community-acquired meticillin-resistant Staphylococcus aureus strain USA300 resists staphylococcal protein A
E Cardot Martin1, A Michel1, B Raynal1
1Centre International de Recherche en Infectiologie (CIRI) INSERM U1111, Equipe 'Pathogénie des Staphylocoques', Université Lyon 1, Lyon, France.
Abstract:
Community-acquired meticillin-resistant Staphylococcus aureus (CA-MRSA) causes severe diseases through virulence factors such as staphylococcal protein A (SpA), which favours immune evasion. We have previously shown that antimicrobial peptides (AMPs) and antibiotics decrease SpA expression in CA-MRSA strains. Here we examined the effects of antibiotics and AMPs, alone and in combination, on SpA expression in various CA-MRSA strains. Six S. aureus isolates corresponding to the major worldwide CA-MRSA clones (ST8-USA300, ST80 and ST30) were selected. Strains were cultured to exponential growth phase and were subsequently incubated with antibiotics (tigecycline, linezolid, clindamycin and vancomycin) at 0.25× MIC or with AMPs [human neutrophil peptide (HNP)-1-3] at the LD50, alone and in combination. After 6h, cultures were assessed for spa mRNA by RT-PCR, whilst SpA protein was measured by specific ELISA after 18h. When used alone, antibiotics (clindamycin, linezolid and tigecycline) or HNPs significantly reduced both SpA production and mRNA levels in ST30 and ST80 strains. When used in combination, HNPs and clindamycin, linezolid or tigecycline synergistically reduced SpA production (6-100-fold) and spa mRNA levels (4-20-fold) in ST80 and ST30 strains. In contrast, for USA300 strains, among all antibiotics, clindamycin alone reduced SpA production (3.5-fold), whereas with combined treatments including HNPs, only a slight reduction in SpA production (1.7-2.2-fold) was observed. In conclusion, antibiotics and AMPs do not modulate SpA expression in USA300, unlike in other CA-MRSA clones. This observation suggests that the virulence and successful spread of USA300 strains is associated with a specific regulatory network.
Insights
Antimicrobial peptides and antibiotics reduce staphylococcal protein A (SpA) expression in some community-acquired methicillin-resistant Staphylococcus aureus (CA-MRSA) strains, but not in the widespread USA300 clone, suggesting a unique regulatory network.
Area of Science:
- Microbiology
- Infectious Diseases
- Pharmacology
Background:
- Community-acquired methicillin-resistant Staphylococcus aureus (CA-MRSA) causes severe infections.
- Staphylococcal protein A (SpA) is a key virulence factor enabling immune evasion in CA-MRSA.
- Previous studies indicated that antimicrobial peptides (AMPs) and antibiotics can decrease SpA expression.
Purpose of the Study:
- To investigate the effects of antibiotics and AMPs, alone and in combination, on SpA expression in different CA-MRSA strains.
- To compare the modulation of SpA expression across major CA-MRSA clones, including USA300, ST80, and ST30.
Main Methods:
- Six major worldwide CA-MRSA clones (ST8-USA300, ST80, ST30) were cultured.
- Strains were treated with antibiotics (tigecycline, linezolid, clindamycin, vancomycin) or human neutrophil peptide (HNP)-1-3.
- SpA mRNA levels were measured by RT-PCR after 6 hours, and SpA protein levels were measured by ELISA after 18 hours.
Main Results:
- Antibiotics (clindamycin, linezolid, tigecycline) and HNPs alone significantly reduced SpA mRNA and protein in ST30 and ST80 strains.
- Combinations of HNPs with clindamycin, linezolid, or tigecycline synergistically reduced SpA in ST80 and ST30 strains.
- In contrast, USA300 strains showed only slight reductions in SpA with clindamycin alone and minimal changes with combined treatments.
Conclusions:
- Antibiotics and AMPs modulate SpA expression in ST30 and ST80 CA-MRSA clones but not in the USA300 clone.
- The USA300 clone's virulence and spread may be linked to a distinct regulatory network that is unresponsive to these treatments.
- Findings highlight strain-specific differences in therapeutic targets for CA-MRSA infections.
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