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Published on: February 22, 2017
Group A Streptococcus induces lysosomal dysfunction in THP-1 macrophages
Scott T Nishioka1, Joshua Snipper1, Jimin Lee1
1Biology Department, Occidental College, Los Angeles, California, USA.
Abstract:
The human-specific bacterial pathogen group A Streptococcus (GAS) is a significant cause of morbidity and mortality. Macrophages are important to control GAS infection, but previous data indicate that GAS can persist in macrophages. In this study, we detail the molecular mechanisms by which GAS survives in THP-1 macrophages. Our fluorescence microscopy studies demonstrate that GAS is readily phagocytosed by macrophages, but persists within phagolysosomes. These phagolysosomes are not acidified, which is in agreement with our findings that GAS cannot survive in low pH environments. We find that the secreted pore-forming toxin Streptolysin O (SLO) perforates the phagolysosomal membrane, allowing leakage of not only protons but also large proteins including the lysosomal protease cathepsin B. Additionally, GAS recruits CD63/LAMP-3, which may contribute to lysosomal permeabilization, especially in the absence of SLO. Thus, although GAS does not inhibit fusion of the lysosome with the phagosome, it has multiple mechanisms to prevent proper phagolysosome function, allowing for persistence of the bacteria within the macrophage. This has important implications for not only the initial response but also the overall functionality of the macrophages, which may lead to the resulting pathologies in GAS infection. Our data suggest that therapies aimed at improving macrophage function may positively impact patient outcomes in GAS infection.
Insights
Group A Streptococcus (GAS) bacteria survive inside macrophages by preventing phagolysosome acidification. This bacterial persistence impacts macrophage function and suggests therapies targeting macrophage function could improve patient outcomes.
Area of Science:
- Immunology
- Microbiology
- Cell Biology
Background:
- Group A Streptococcus (GAS) is a human pathogen causing significant illness and death.
- Macrophages are crucial for controlling GAS infections, yet GAS can persist within them.
- Understanding GAS survival mechanisms within macrophages is vital for developing effective treatments.
Purpose of the Study:
- To elucidate the molecular mechanisms enabling GAS survival within THP-1 macrophages.
- To investigate how GAS manipulates phagolysosome function for intracellular persistence.
Main Methods:
- Utilizing fluorescence microscopy to observe GAS-macrophage interactions.
- Assessing phagolysosome acidification and integrity.
- Investigating the role of Streptolysin O (SLO) and CD63/LAMP-3 in bacterial survival.
Main Results:
- GAS is phagocytosed but persists within non-acidified phagolysosomes.
- Streptolysin O (SLO) perforates the phagolysosomal membrane, causing leakage of protons and cathepsin B.
- GAS recruits CD63/LAMP-3, potentially contributing to lysosomal permeabilization, even without SLO.
Conclusions:
- GAS employs multiple strategies to disrupt phagolysosome function, ensuring its survival within macrophages.
- Impaired phagolysosome function contributes to GAS-related pathologies.
- Therapeutic strategies enhancing macrophage function may improve outcomes for GAS infections.

