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Published on: January 7, 2019
STAT1 signaling is essential for protection against Cryptococcus neoformans infection in mice
Chrissy M Leopold Wager1, Camaron R Hole1, Karen L Wozniak1
1Department of Biology, University of Texas, San Antonio, TX 78249; South Texas Center for Emerging Infectious Diseases, University of Texas, San Antonio, TX 78249;
Abstract:
Nonprotective immune responses to highly virulent Cryptococcus neoformans strains, such as H99, are associated with Th2-type cytokine production, alternatively activated macrophages, and inability of the host to clear the fungus. In contrast, experimental studies show that protective immune responses against cryptococcosis are associated with Th1-type cytokine production and classical macrophage activation. The protective response induced during C. neoformans strain H99γ (C. neoformans strain H99 engineered to produce murine IFN-γ) infection correlates with enhanced phosphorylation of the transcription factor STAT1 in macrophages; however, the role of STAT1 in protective immunity to C. neoformans is unknown. The current studies examined the effect of STAT1 deletion in murine models of protective immunity to C. neoformans. Survival and fungal burden were evaluated in wild-type and STAT1 knockout (KO) mice infected with either strain H99γ or C. neoformans strain 52D (unmodified clinical isolate). Both strains H99γ and 52D were rapidly cleared from the lungs, did not disseminate to the CNS, or cause mortality in the wild-type mice. Conversely, STAT1 KO mice infected with H99γ or 52D had significantly increased pulmonary fungal burden, CNS dissemination, and 90-100% mortality. STAT1 deletion resulted in a shift from Th1 to Th2 cytokine bias, pronounced lung inflammation, and defective classical macrophage activation. Pulmonary macrophages from STAT1 KO mice exhibited defects in NO production correlating with inefficient inhibition of fungal proliferation. These studies demonstrate that STAT1 signaling is essential not only for regulation of immune polarization but also for the classical activation of macrophages that occurs during protective anticryptococcal immune responses.
Insights
Signal transducer and activator of transcription 1 (STAT1) is crucial for protective immunity against Cryptococcus neoformans. STAT1 deficiency leads to increased fungal burden, central nervous system dissemination, and mortality, highlighting STAT1
Area of Science:
- Immunology
- Mycology
- Infectious Diseases
Background:
- Nonprotective immunity to Cryptococcus neoformans involves Th2 responses and alternatively activated macrophages.
- Protective immunity is linked to Th1 responses and classical macrophage activation.
- STAT1 phosphorylation is observed during protective C. neoformans H99γ infection, but its role is unclear.
Purpose of the Study:
- To investigate the role of STAT1 in protective immunity against Cryptococcus neoformans.
- To determine the impact of STAT1 deletion on host survival and fungal clearance.
Main Methods:
- Used wild-type and STAT1 knockout (KO) murine models.
- Infected mice with virulent C. neoformans strains H99γ and 52D.
- Assessed survival, pulmonary fungal burden, and central nervous system (CNS) dissemination.
Main Results:
- Wild-type mice cleared both fungal strains, showing no mortality.
- STAT1 KO mice exhibited increased fungal burden, CNS dissemination, and 90-100% mortality.
- STAT1 deletion caused a Th1 to Th2 cytokine shift, lung inflammation, and defective macrophage activation, impairing nitric oxide production.
Conclusions:
- STAT1 signaling is essential for regulating immune polarization during C. neoformans infection.
- STAT1 is critical for classical macrophage activation and nitric oxide production.
- STAT1 plays a vital role in protective anticryptococcal immunity.
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