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Published on: March 23, 2019
Streptococcus oralis Induces Lysosomal Impairment of Macrophages via Bacterial Hydrogen Peroxide
Nobuo Okahashi1, Masanobu Nakata2, Hirotaka Kuwata3
1Center for Frontier Oral Science, Osaka University Graduate School of Dentistry, Suita-Osaka, Japan.
Abstract:
Streptococcus oralis, an oral commensal, belongs to the mitis group of streptococci and occasionally causes opportunistic infections, such as bacterial endocarditis and bacteremia. Recently, we found that the hydrogen peroxide (H2O2) produced by S. oralis is sufficient to kill human monocytes and epithelial cells, implying that streptococcal H2O2 is a cytotoxin. In the present study, we investigated whether streptococcal H2O2 impacts lysosomes, organelles of the intracellular digestive system, in relation to cell death. S. oralis infection induced the death of RAW 264 macrophages in an H2O2-dependent manner, which was exemplified by the fact that exogenous H2O2 also induced cell death. Infection with either a mutant lacking spxB, which encodes pyruvate oxidase responsible for H2O2 production, or Streptococcus mutans, which does not produce H2O2, showed less cytotoxicity. Visualization of lysosomes with LysoTracker revealed lysosome deacidification after infection with S. oralis or exposure to H2O2, which was corroborated by acridine orange staining. Similarly, fluorescent labeling of lysosome-associated membrane protein-1 gradually disappeared during infection with S. oralis or exposure to H2O2 The deacidification and the following induction of cell death were inhibited by chelating iron in lysosomes. Moreover, fluorescent staining of cathepsin B indicated lysosomal destruction. However, treatment of infected cells with a specific inhibitor of cathepsin B had negligible effects on cell death; instead, it suppressed the detachment of dead cells from the culture plates. These results suggest that streptococcal H2O2 induces cell death with lysosomal destruction and then the released lysosomal cathepsins contribute to the detachment of the dead cells.
Insights
Streptococcus oralis produces hydrogen peroxide (H2O2), a cytotoxin that causes macrophage cell death by deacidifying lysosomes. This lysosomal damage leads to cell death and the release of cathepsins, contributing to cell detachment.
Area of Science:
- Microbiology
- Cell Biology
- Toxicology
Background:
- Streptococcus oralis is an oral bacterium.
- Hydrogen peroxide (H2O2) produced by S. oralis acts as a cytotoxin.
- Lysosomes are key organelles in cellular digestion and homeostasis.
Purpose of the Study:
- To investigate the impact of streptococcal H2O2 on lysosomes.
- To elucidate the role of lysosomal changes in S. oralis-induced cell death.
Main Methods:
- RAW 264 macrophage infection models with S. oralis and H2O2.
- Lysosomal function assessment using LysoTracker and acridine orange staining.
- Analysis of lysosomal membrane protein-1 and cathepsin B expression.
- Iron chelation and cathepsin B inhibition experiments.
Main Results:
- S. oralis infection and exogenous H2O2 induced macrophage death in an H2O2-dependent manner.
- Lysosomal deacidification and destruction were observed following S. oralis infection or H2O2 exposure.
- Iron chelation inhibited H2O2-induced lysosomal deacidification and cell death.
- Cathepsin B release contributed to the detachment of dead cells, not cell death itself.
Conclusions:
- Streptococcal H2O2 is a key factor in inducing macrophage cell death.
- Lysosomal deacidification and destruction are critical events in this process.
- Cathepsin B plays a role in the post-mortem detachment of cells.
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