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Updated: May 11, 2026

Development and Assessment of Intracellular Infection Models for Staphylococcus aureus
Published on: January 17, 2025
PSMs of hypervirulent Staphylococcus aureus act as intracellular toxins that kill infected osteoblasts
Jean-Philippe Rasigade1, Sophie Trouillet-Assant, Tristan Ferry
1Institut National de la Santé et de la Recherche Médicale (INSERM) U1111, University of Lyon, Lyon, France.
Abstract:
Epidemic community-acquired methicillin-resistant Staphylococcus aureus (CA-MRSA) is associated with more severe and acute forms of osteomyelitis than healthcare-associated (HA-) MRSA. Although S. aureus is now recognized as a facultative intracellular pathogen, the contribution of osteoblast invasion by CA-MRSA to the pathogenesis of osteomyelitis is unknown. Using an ex vivo model of intracellular infection of human osteoblasts, we demonstrated that CA-MRSA strains of diverse lineages share an enhanced ability to kill infected osteoblasts compared to HA-MRSA. Cytotoxicity comparisons of CA-MRSA isogenic deletion mutants revealed that phenol-soluble modulins (PSMs), a class of membrane-damaging exoproteins that are expressed at higher levels in CA-MRSA than in HA-MRSA, are involved in this osteoblast killing, whereas other major CA-MRSA virulence determinants, the Panton-Valentine leukocidin and alpha-toxin, are not involved. Similarly, functional agr and sarA regulators, which control the expression of PSMs and alpha-toxin, were required for the expression of the intracellular cytotoxic phenotype by CA-MRSA, whereas the saeRS regulator, which controls the expression of alpha-toxin but not PSMs, had no impact on cytotoxicity. Finally, PSM transcript levels determined by quantitative reverse-transcriptase PCR were significantly higher in CA-MRSA than in HA-MRSA strains and associated with cell damage in MRSA-infected osteoblasts. These findings provide new insights into the pathogenesis of severe CA-MRSA osteomyelitis and unravel a novel virulence strategy of CA-MRSA, based on the invasion and subsequent killing of osteoblasts by PSMs acting as intracellular toxins.
Insights
Community-acquired methicillin-resistant Staphylococcus aureus (CA-MRSA) causes severe osteomyelitis by invading and killing bone cells. Phenol-soluble modulins (PSMs) are key toxins responsible for this intracellular damage, offering new insights into CA-MRSA virulence.
Area of Science:
- Infectious Diseases
- Microbiology
- Pathogenesis
Background:
- Community-acquired methicillin-resistant Staphylococcus aureus (CA-MRSA) causes more severe osteomyelitis than healthcare-associated (HA-MRSA).
- Staphylococcus aureus is recognized as a facultative intracellular pathogen, but its role in osteomyelitis pathogenesis via osteoblast invasion is unclear.
Purpose of the Study:
- To investigate the contribution of CA-MRSA osteoblast invasion to osteomyelitis pathogenesis.
- To identify the virulence factors responsible for CA-MRSA's enhanced cytotoxicity against osteoblasts.
Main Methods:
- Utilized an ex vivo model of human osteoblast intracellular infection.
- Compared cytotoxicity of CA-MRSA and HA-MRSA strains, including isogenic deletion mutants.
- Analyzed the role of virulence factors (PSMs, Panton-Valentine leukocidin, alpha-toxin) and regulators (agr, sarA, saeRS).
- Quantified PSM transcript levels using reverse-transcriptase PCR.
Main Results:
- CA-MRSA strains demonstrated enhanced killing of infected osteoblasts compared to HA-MRSA.
- Phenol-soluble modulins (PSMs) were identified as key contributors to osteoblast cytotoxicity.
- The agr and sarA regulators were essential for the intracellular cytotoxic phenotype, while saeRS was not.
- Higher PSM transcript levels in CA-MRSA correlated with osteoblast cell damage.
Conclusions:
- CA-MRSA possesses an enhanced ability to invade and kill human osteoblasts, contributing to severe osteomyelitis.
- Phenol-soluble modulins (PSMs) act as intracellular toxins, representing a novel virulence strategy for CA-MRSA.
- Understanding PSM's role provides new insights into CA-MRSA osteomyelitis pathogenesis.
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