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Published on: April 29, 2015
Ferroptotic stress promotes macrophages against intracellular bacteria
Ruonan Ma1,2, Ling Fang1,2, Lei Chen2
1Institute of Translational Medicine, Department of Pharmacology, School of Medicine, Yangzhou University, China.
Abstract:
Rational: Intracellular bacterial survival is a major factor causing chronic or recurrent infection, leading to the failure of both host defense and/or antibiotic treatment. However, the elimination of intracellular bacteria is challenging as they are protected from antibiotics and host immune attack. Recent studies have indicated that iron helps macrophages against intracellular bacteria, contradictory to traditional "nutritional immunity", in which iron is considered a key nutrient for bacterial survival in host cells. However, how iron facilitates intracellular bacterial death has not been fully clarified. In this study, we found that ferroptotic stress can help macrophages suppress intracellular bacteria by reversing the importation of ferrous iron into bacterial vacuoles via ferroportin and thereby inducing in situ ferroptosis-like bacterial death. Methods: A macrophage model of bacterial invasion was established to monitor dynamic changes in ferroptotic hallmarks, including ferrous iron and lipid peroxidation. Ferroptosis inducers and inhibitors were added to the model to evaluate the relationship between ferroptotic stress and intracellular bacterial survival. We then determined the spatiotemporal distributions of ferroportin, ferrous iron, and lipid peroxidation in macrophages and intracellular bacteria. A bacterial infection mouse model was established to evaluate the therapeutic effects of drugs that regulate ferroptotic stress. Results: Ferrous iron and lipid peroxidation increased sharply in the early stage of bacterial infection in the macrophages, then decreased to normal levels in the late stage of infection. The addition of ferroptosis inducers (ras-selective lethal small molecule 3, sulfasalazine, and acetaminophen) in macrophages promoted intracellular bacterial suppression. Further studies revealed that ferrous iron could be delivered to the intracellular bacterial compartment via inward ferroportin transportation, where ferrous iron induced ferroptosis-like death of bacteria. In addition, ferroptotic stress declined to normal levels in the late stage of infection by regulating iron-related pathways in the macrophages. Importantly, we found that enhancing ferroptotic stress with a ferroptosis inducer (sulfasalazine) successfully suppressed bacteria in the mouse infection models. Conclusions: Our study suggests that the spatiotemporal response to ferroptosis stress is an efficient pathway for macrophage defense against bacterial invasion, and targeting ferroptosis may achieve therapeutic targets for infectious diseases challenged by intracellular pathogens.
Insights
Macrophages can fight intracellular bacteria by inducing ferroptosis-like death. This process involves iron accumulation within bacterial vacuoles, leading to bacterial demise and offering a potential therapeutic target for infectious diseases.
Area of Science:
- Cellular Biology
- Immunology
- Microbiology
Background:
- Intracellular bacteria pose a significant challenge to host defense and antibiotic treatments, often leading to chronic or recurrent infections.
- The role of iron in intracellular bacterial infections is complex, with recent findings suggesting a protective role for macrophages against bacteria, contrary to traditional nutritional immunity concepts.
- Mechanisms by which iron facilitates intracellular bacterial death remain incompletely understood.
Purpose of the Study:
- To investigate how ferroptotic stress contributes to macrophage-mediated suppression of intracellular bacteria.
- To elucidate the role of ferrous iron import via ferroportin in inducing bacterial ferroptosis-like death within macrophages.
- To evaluate the therapeutic potential of modulating ferroptotic stress in bacterial infection models.
Main Methods:
- Established a macrophage model of bacterial invasion to track ferroptotic hallmarks like ferrous iron and lipid peroxidation.
- Utilized ferroptosis inducers and inhibitors to assess the impact of ferroptotic stress on intracellular bacterial survival.
- Determined the spatiotemporal distribution of ferroportin, ferrous iron, and lipid peroxidation in infected macrophages and bacteria.
- Employed a bacterial infection mouse model to test the efficacy of ferroptotic stress-modulating drugs.
Main Results:
- Ferrous iron and lipid peroxidation levels transiently increased in macrophages during early bacterial infection, then returned to normal.
- Ferroptosis inducers significantly enhanced intracellular bacterial suppression in macrophages.
- Ferrous iron was transported into bacterial vacuoles via ferroportin, inducing ferroptosis-like bacterial death.
- Enhancing ferroptotic stress with sulfasalazine effectively suppressed bacteria in mouse infection models.
Conclusions:
- The spatiotemporal regulation of ferroptotic stress is an effective macrophage defense mechanism against intracellular bacterial invasion.
- Targeting ferroptosis presents a promising therapeutic strategy for managing infectious diseases caused by intracellular pathogens.
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