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Heme-induced ITAM signaling exacerbates malaria-associated neuropathogenesis through activation of platelet mTOR
Irina Portier1,2, Frederik Denorme1,2,3, Neal D Tolley2
1Department of Emergency Medicine, Washington University, St Louis, MO.
Abstract:
Malaria, caused by Plasmodium parasites, has a worldwide disease burden of over 250 million cases and ∼600 000 deaths annually. A leading cause of malaria-associated mortality and morbidity is cerebral malaria (CM). Platelets mediate CM pathogenesis, although the exact mechanisms remain largely unknown. We examined whether the mechanistic target of rapamycin (mTOR) pathway in platelets contributes to malaria pathogenesis. Our results demonstrate activation of the mTOR pathway in platelets ex vivo after coincubation with Plasmodium falciparum-infected red blood cells and in vivo in Plasmodium berghei ANKA (PbA)-infected mice. When mTOR was specifically deleted in platelets (mTORplt-/-), mice with experimental CM (ECM) had significantly increased survival. Survival differences were independent of parasitemia and thrombocytopenia. PbA-infected mTORplt-/- mice exhibited significantly reduced platelet deposition in the brain, resulting in improved cerebral blood flow and reduced brain vascular permeability. Plasma heme levels, generated during malaria, correlated significantly with intracerebral platelet accumulation in the PbA-infected mTORplt+/+ mice but not in PbA-infected mTORplt-/- mice. In vitro experiments demonstrated that heme activates platelet mTOR downstream of immunoreceptor tyrosine-based activation motif (ITAM) signaling, predominantly through CLEC-2 (C-type lectin-like receptor 2). Blockage of heme-induced platelet activation with cobalt protoporphyrin significantly reduced platelet mTOR activation and decreased ECM-associated mortality. In conclusion, our findings demonstrate that platelet mTOR amplifies platelet activation responses induced by heme and deletion of platelet mTOR reduces platelet deposition in the brain, which we propose impedes symptomatic disease progression and malaria-associated mortality.
Insights
Targeting the mechanistic target of rapamycin (mTOR) pathway in platelets offers a new strategy against cerebral malaria (CM). Deleting platelet mTOR significantly improves survival in experimental CM by reducing brain platelet accumulation.
Area of Science:
- Immunology
- Hematology
- Infectious Diseases
Background:
- Malaria causes significant global mortality, with cerebral malaria (CM) being a major contributor.
- Platelets play a role in CM pathogenesis, but the underlying mechanisms are not fully understood.
- The mechanistic target of rapamycin (mTOR) pathway is a key regulator of cellular processes, including platelet function.
Purpose of the Study:
- To investigate the role of the mTOR pathway in platelets during malaria pathogenesis.
- To determine if targeting platelet mTOR can ameliorate experimental cerebral malaria (ECM) outcomes.
Main Methods:
- Activated platelets ex vivo with Plasmodium falciparum-infected red blood cells and in vivo in Plasmodium berghei ANKA (PbA)-infected mice.
- Generated platelet-specific mTOR knockout mice (mTORplt-/-) to assess ECM.
- Measured parasitemia, thrombocytopenia, platelet deposition in the brain, cerebral blood flow, and vascular permeability.
- Investigated heme's role in activating platelet mTOR via ITAM signaling and C-type lectin-like receptor 2 (CLR2).
Main Results:
- mTOR pathway was activated in platelets during malaria infection.
- mTORplt-/- mice exhibited significantly increased survival from ECM, independent of parasitemia or thrombocytopenia.
- Reduced platelet accumulation in the brain, improved cerebral blood flow, and decreased vascular permeability were observed in mTORplt-/- mice.
- Heme activated platelet mTOR, and blocking this activation reduced ECM mortality.
Conclusions:
- Platelet mTOR signaling amplifies heme-induced platelet activation, contributing to CM pathogenesis.
- Deletion of platelet mTOR reduces brain platelet deposition, impeding disease progression and mortality in experimental cerebral malaria.
- Targeting platelet mTOR represents a potential therapeutic strategy for cerebral malaria.
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