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Perforin Expression by CD8 T Cells Is Sufficient To Cause Fatal Brain Edema during Experimental Cerebral Malaria
Matthew A Huggins1,2, Holly L Johnson3, Fang Jin2
1Immunology Program, Mayo Graduate School, Rochester, Minnesota, USA.
Abstract:
Human cerebral malaria (HCM) is a serious complication of Plasmodium falciparum infection. The most severe outcomes for patients include coma, permanent neurological deficits, and death. Recently, a large-scale magnetic resonance imaging (MRI) study in humans identified brain swelling as the most prominent predictor of fatal HCM. Therefore, in this study, we sought to define the mechanism controlling brain edema through the use of the murine experimental cerebral malaria (ECM) model. Specifically, we investigated the ability of CD8 T cells to initiate brain edema during ECM. We determined that areas of blood-brain barrier (BBB) permeability colocalized with a reduction of the cerebral endothelial cell tight-junction proteins claudin-5 and occludin. Furthermore, through small-animal MRI, we analyzed edema and vascular leakage. Using gadolinium-enhanced T1-weighted MRI, we determined that vascular permeability is not homogeneous but rather confined to specific regions of the brain. Our findings show that BBB permeability was localized within the brainstem, olfactory bulb, and lateral ventricle. Concurrently with the initiation of vascular permeability, T2-weighted MRI revealed edema and brain swelling. Importantly, ablation of the cytolytic effector molecule perforin fully protected against vascular permeability and edema. Furthermore, perforin production specifically by CD8 T cells was required to cause fatal edema during ECM. We propose that CD8 T cells initiate BBB breakdown through perforin-mediated disruption of tight junctions. In turn, leakage from the vasculature into the parenchyma causes brain swelling and edema. This results in a breakdown of homeostatic maintenance that likely contributes to ECM pathology.
Insights
CD8 T cells cause brain swelling in cerebral malaria by disrupting the blood-brain barrier using perforin. Blocking perforin prevents this damage, offering a potential therapeutic target for severe malaria complications.
Area of Science:
- Neuroscience
- Immunology
- Pathology
Background:
- Human cerebral malaria (HCM) is a severe complication of Plasmodium falciparum infection, often leading to coma, neurological deficits, and death.
- Brain swelling is a key predictor of fatal HCM, but the underlying mechanisms remain unclear.
- Understanding brain edema formation is critical for developing effective treatments for severe malaria.
Purpose of the Study:
- To elucidate the mechanism controlling brain edema in experimental cerebral malaria (ECM).
- To investigate the role of CD8 T cells in initiating brain edema during ECM.
- To identify molecular targets for preventing fatal cerebral malaria.
Main Methods:
- Utilized the murine experimental cerebral malaria (ECM) model.
- Employed small-animal magnetic resonance imaging (MRI) to assess edema and vascular leakage.
- Analyzed blood-brain barrier (BBB) integrity by examining tight-junction proteins (claudin-5, occludin).
- Investigated the role of perforin, a cytolytic effector molecule, and CD8 T cells.
Main Results:
- BBB permeability correlated with reduced tight-junction proteins in endothelial cells.
- MRI revealed localized vascular leakage and edema in specific brain regions (brainstem, olfactory bulb, lateral ventricle).
- Ablation of perforin completely prevented vascular permeability and edema.
- Perforin produced by CD8 T cells was essential for causing fatal edema in ECM.
Conclusions:
- CD8 T cells initiate blood-brain barrier breakdown in ECM via perforin-mediated disruption of tight junctions.
- Leakage of blood components into the brain parenchyma causes edema and swelling, contributing to ECM pathology.
- Targeting perforin may offer a novel therapeutic strategy against severe cerebral malaria.
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