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Published on: February 19, 2019
Staphylococcus aureus Delta Toxin Modulates both Extracellular Membrane Vesicle Biogenesis and Amyloid Formation
Abstract:
Staphylococcus aureus secretes phenol-soluble modulins (PSMs), a family of small, amphipathic, secreted peptides with multiple biologic activities. Community-acquired S. aureus strains produce high levels of PSMs in planktonic cultures, and PSM alpha peptides have been shown to augment the release of extracellular membrane vesicles (MVs). We observed that amyloids, aggregates of proteins characterized by a fibrillar morphology and stained with specific dyes, co-purified with MVs harvested from cell-free culture supernatants of community-acquired S. aureus strains. δ-toxin was a major component of amyloid fibrils that co-purified with strain LAC MVs, and δ-toxin promoted the production of MVs and amyloid fibrils in a dose-dependent manner. To determine whether MVs and amyloid fibrils were generated under in vivo conditions, we inoculated mice with S. aureus harvested from planktonic cultures. Bacterial MVs could be isolated and purified from lavage fluids recovered from infected animals. Although δ-toxin was the most abundant PSM in lavage fluids, amyloid fibrils could not be detected in these samples. Our findings expand our understanding of amyloid fibril formation in S. aureus cultures, reveal important roles of δ-toxin in amyloid fibril formation and MV biogenesis, and demonstrate that MVs are generated in vivo in a staphylococcal infection model.
Importance:
Extracellular membrane vesicles (MVs) produced by Staphylococcus aureus in planktonic cultures encapsulate a diverse cargo of bacterial proteins, nucleic acids, and glycopolymers that are protected from destruction by external factors. δ-toxin, a member of the phenol soluble modulin family, was shown to be critical for MV biogenesis. Amyloid fibrils co-purified with MVs generated by virulent, community-acquired S. aureus strains, and fibril formation was dependent on expression of the S. aureus δ-toxin gene ( hld ). Mass spectrometry data confirmed that the amyloid fibrils were comprised of δ-toxin. Although S. aureus MVs were produced in vivo in a localized murine infection model, amyloid fibrils were not observed in the in vivo setting. Our findings provide critical insights into staphylococcal factors involved in MV biogenesis and amyloid formation.
Insights
Staphylococcus aureus secretes phenol-soluble modulin (PSM) peptides, including delta-toxin, which promotes extracellular membrane vesicle (MV) production and amyloid fibril formation in vitro. While MVs are generated in vivo during infection, amyloid fibrils are not detected in these settings.
Area of Science:
- Microbiology
- Biochemistry
- Structural Biology
Background:
- Staphylococcus aureus secretes phenol-soluble modulins (PSMs), including delta-toxin, which are amphipathic peptides with diverse biological activities.
- Community-acquired S. aureus strains produce high levels of PSMs and augment extracellular membrane vesicle (MV) release.
Approach:
- Investigated amyloid fibril co-purification with MVs from S. aureus cultures.
- Assessed the role of delta-toxin in MV and amyloid fibril production.
- Examined MV and amyloid fibril generation in a murine infection model.
Key Points:
- Amyloid fibrils, primarily composed of delta-toxin, co-purified with MVs from S. aureus.
- Delta-toxin dose-dependently promoted MV and amyloid fibril production in vitro.
- Bacterial MVs were isolated from infected mice, but amyloid fibrils were not detected in vivo.
Conclusions:
- Delta-toxin plays a crucial role in S. aureus amyloid fibril formation and MV biogenesis.
- Extracellular MVs are produced by S. aureus during in vivo infections.
- Amyloid fibril formation may be specific to the in vitro culture environment.
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