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Published on: November 16, 2016
IFN-γ Limits Immunopathogenesis but Delays Fungal Clearance during Pneumocystis Pneumonia
Jing Wang1, Zhuo-Qian Zhang2, Francis Gigliotti1,2
1Department of Pediatrics, University of Rochester School of Medicine and Dentistry, Rochester, NY.
Abstract:
High levels of IFN-γ are produced in the lung during an adaptive immune response to Pneumocystis, but the effects of this prototypical Th1 cytokine on fungal clearance and immunopathogenesis have not been fully defined. Therefore, Pneumocystis-infected immunodeficient mice were immune reconstituted and administered control or anti-IFN-γ neutralizing Ab to determine how IFN-γ regulates the balance between host defense and immune-mediated lung injury. Mice treated with anti-IFN-γ demonstrated an initial worsening of Pneumocystis pneumonia-related immunopathogenesis, with greater weight loss, heightened lung inflammation, and more severe pulmonary function deficits than control mice. However, IFN-γ neutralization also enhanced macrophage phagocytosis of Pneumocystis and accelerated fungal clearance. When anti-IFN-γ-treated mice were also given IL-4 and IL-13 to promote a Th2-biased lung environment, the accelerated fungal clearance was preserved, but the severity of immunopathogenesis was reduced, and a more rapid recovery was observed. A direct suppressive effect of IFN-γ on macrophages was required but was not solely responsible for delayed fungal clearance, suggesting that IFN-γ acts through multiple mechanisms that likely include modulation of both macrophage and Th polarization. Enhanced Pneumocystis clearance in anti-IFN-γ-treated and IFN-γR-deficient mice was associated with significantly elevated IL-17+ CD4+ T cells and IL-17 protein in the lungs. Furthermore, neutralization of IL-17, but not IL-4, signaling blocked the accelerated fungal clearance observed in anti-IFN-γ-treated mice. Together, these data demonstrate that although IFN-γ delays fungal clearance by suppressing the lung Th17 response, it also serves an important regulatory role that limits immunopathogenesis and preserves pulmonary function.
Insights
Interferon-gamma (IFN-γ) delays Pneumocystis clearance by suppressing Th17 responses but limits lung inflammation. Neutralizing IFN-γ accelerates fungal clearance and improves recovery, highlighting its dual role in host defense.
Area of Science:
- Immunology
- Infectious Diseases
- Pulmonology
Background:
- High levels of interferon-gamma (IFN-γ) are observed in the lungs during adaptive immune responses to Pneumocystis.
- The precise roles of IFN-γ in fungal clearance and immunopathogenesis remain incompletely understood.
Purpose of the Study:
- To investigate how IFN-γ regulates the balance between host defense and immune-mediated lung injury in Pneumocystis pneumonia.
- To elucidate the mechanisms by which IFN-γ influences fungal clearance and lung inflammation.
Main Methods:
- Pneumocystis-infected immunodeficient mice were used, with immune reconstitution and administration of anti-IFN-γ neutralizing antibodies.
- Mice were also treated with IL-4 and IL-13 to assess the impact of a Th2-biased environment.
- Levels of IL-17+ CD4+ T cells and IL-17 protein were measured, and IL-17 signaling was neutralized.
Main Results:
- Anti-IFN-γ treatment initially worsened immunopathogenesis but enhanced macrophage phagocytosis and accelerated Pneumocystis clearance.
- Combining anti-IFN-γ treatment with IL-4 and IL-13 preserved accelerated fungal clearance while reducing immunopathogenesis and promoting faster recovery.
- Accelerated fungal clearance in anti-IFN-γ-treated mice was linked to elevated IL-17+ CD4+ T cells and IL-17, with IL-17 neutralization blocking this effect.
Conclusions:
- IFN-γ delays Pneumocystis clearance by suppressing the lung Th17 response.
- IFN-γ plays a crucial regulatory role in limiting immunopathogenesis and preserving pulmonary function during Pneumocystis infection.
- Targeting IFN-γ may offer therapeutic benefits by enhancing fungal clearance while mitigating lung injury.
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