Lysosomal permeabilization by Group A Streptococcus releases proteins into the macrophage cytosol
Ava Quezada1, Kevin Lord1, Cheldon Alcantara1
1Biology Department, Occidental College, Los Angeles, CA, 90041 USA.
Abstract:
The human-specific bacterial pathogen Group A Streptococcus (GAS) is a significant cause of morbidity and mortality due to its ability to cause severe invasive infection. Although macrophages are important for controlling GAS infection, we and others have demonstrated that GAS can persist in macrophages by perforating the phagolysosome using the pore-forming toxin streptolysin O (SLO). In this study, we examined how phagosomal perforation releases lysosomal and bacterial proteins into the cytosol and alters cytosolic protein content in the macrophage. Using IL-1β as a measure of intracellular pathogen detection, we confirmed that cytosolic preparations from macrophages infected with either wild-type (WT) or SLO-deficient (ΔSLO) bacteria contained new proteins that are absent in uninfected cytosol controls. Proteomic analysis revealed distinct cytosolic protein profiles in both WT- and ΔSLO-infected macrophages. M1 protein was detected only in the cytosol of WT-infected macrophages and corresponded with the IL-1β response, indicating SLO-mediated release of M1 protein from the phagosome, and providing a mechanism for cytosolic recognition of this virulence factor. Unexpectedly, cytosolic extracts of both WT- and ΔSLO-infected macrophages contained all histone proteins, suggesting that nucleosomal complexes are released into the cytosol during GAS infection. Our work reveals both a mechanism for the activation of the inflammatory response on a cellular level, and the surprising consequences of phagosomal perforation in GAS infections. These responses may collectively contribute to the pathologies observed during severe invasive GAS infection, and can help inform therapies aimed at improving macrophage function and patient outcomes.
Insights
Group A Streptococcus (GAS) bacteria can survive inside macrophages by damaging phagolysosomes with streptolysin O (SLO). This study reveals how SLO releases bacterial and host proteins into the cell, triggering inflammation and contributing to severe infections.
Area of Science:
- Microbiology
- Immunology
- Cell Biology
Background:
- Group A Streptococcus (GAS) is a human pathogen causing significant morbidity and mortality through invasive infections.
- Macrophages are crucial for controlling GAS, but the bacteria can persist intracellularly.
- GAS utilizes streptolysin O (SLO) to perforate the phagolysosome, enabling survival within macrophages.
Purpose of the Study:
- To investigate how phagosomal perforation by GAS affects macrophage cytosolic content.
- To identify specific proteins released into the cytosol during GAS infection.
- To understand the role of SLO in releasing bacterial and host factors that activate inflammatory responses.
Main Methods:
- Macrophage infection models using wild-type (WT) and SLO-deficient (ΔSLO) GAS strains.
- Proteomic analysis of cytosolic extracts from infected and uninfected macrophages.
- Measurement of IL-1β release as an indicator of intracellular pathogen detection.
Main Results:
- Proteomic analysis revealed distinct cytosolic protein profiles in macrophages infected with WT or ΔSLO GAS.
- M1 protein was detected in the cytosol of WT-infected macrophages, correlating with IL-1β release, indicating SLO-mediated release.
- Histone proteins were found in the cytosol of both WT- and ΔSLO-infected macrophages, suggesting nucleosomal complex release.
Conclusions:
- Phagosomal perforation by GAS, particularly SLO-mediated, releases bacterial (M1) and host (histones) proteins into the macrophage cytosol.
- The release of these proteins contributes to the activation of inflammatory responses, such as IL-1β production.
- These cellular events offer insights into the pathologies of severe invasive GAS infections and potential therapeutic targets.
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