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Isolation and Analysis of Brain-sequestered Leukocytes from Plasmodium berghei ANKA-infected Mice
Published on: January 2, 2013
Brain endothelial STING1 activation by Plasmodium-sequestered heme promotes cerebral malaria via type I IFN response
Teresa F Pais1, Hajrabibi Ali1, Joana Moreira da Silva1,2
1Instituto Gulbenkian de Ciência, 2780-156 Oeiras, Portugal.
Abstract:
Cerebral malaria (CM) is a life-threatening form of Plasmodium falciparum infection caused by brain inflammation. Brain endothelium dysfunction is a hallmark of CM pathology, which is also associated with the activation of the type I interferon (IFN) inflammatory pathway. The molecular triggers and sensors eliciting brain type I IFN cellular responses during CM remain largely unknown. We herein identified the stimulator of interferon response cGAMP interactor 1 (STING1) as the key innate immune sensor that induces Ifnβ1 transcription in the brain of mice infected with Plasmodium berghei ANKA (Pba). This STING1/IFNβ-mediated response increases brain CXCL10 governing the extent of brain leukocyte infiltration and blood-brain barrier (BBB) breakdown, and determining CM lethality. The critical role of brain endothelial cells (BECs) in fueling type I IFN-driven brain inflammation was demonstrated in brain endothelial-specific IFNβ-reporter and STING1-deficient Pba-infected mice, which were significantly protected from CM lethality. Moreover, extracellular particles (EPs) released from Pba-infected erythrocytes activated the STING1-dependent type I IFN response in BECs, a response requiring intracellular acidification. Fractionation of the EPs enabled us to identify a defined fraction carrying hemoglobin degradation remnants that activates STING1/IFNβ in the brain endothelium, a process correlated with heme content. Notably, stimulation of STING1-deficient BECs with heme, docking experiments, and in vitro binding assays unveiled that heme is a putative STING1 ligand. This work shows that heme resultant from the parasite heterotrophic activity operates as an alarmin, triggering brain endothelial inflammatory responses via the STING1/IFNβ/CXCL10 axis crucial to CM pathogenesis and lethality.
Insights
Heme released during malaria infection acts as an alarm, activating STING1 in brain endothelial cells. This triggers inflammation via the STING1/IFNβ/CXCL10 pathway, driving cerebral malaria (CM) severity and lethality.
Area of Science:
- Neuroimmunology
- Infectious Diseases
- Molecular Biology
Background:
- Cerebral malaria (CM) involves brain inflammation and type I interferon (IFN) pathway activation.
- The specific triggers and sensors for brain type I IFN responses in CM are largely unknown.
Purpose of the Study:
- To identify the molecular sensors responsible for type I IFN induction in the brain during CM.
- To elucidate the role of brain endothelial cells (BECs) in CM pathogenesis.
- To determine the specific malaria-derived molecules that activate these pathways.
Main Methods:
- Used *Plasmodium berghei* ANKA (Pba)-infected mice, including STING1-deficient and brain endothelial-specific reporter models.
- Analyzed extracellular particles (EPs) from infected erythrocytes and their components.
- Conducted in vitro assays with heme and BECs to assess STING1 activation.
Main Results:
- Identified STING1 as the key sensor inducing Ifnβ1 transcription in the brain during Pba infection.
- Demonstrated that STING1/IFNβ signaling increases CXCL10, leading to leukocyte infiltration and blood-brain barrier (BBB) breakdown, thus determining CM lethality.
- Showed that Pba-derived EPs, particularly heme, activate STING1 in BECs, requiring intracellular acidification.
- Confirmed heme as a putative STING1 ligand.
Conclusions:
- Heme, a byproduct of parasite activity, acts as an alarmin activating the STING1/IFNβ/CXCL10 axis in BECs.
- This pathway is critical for driving brain inflammation, BBB disruption, and lethality in cerebral malaria.
- Targeting this heme-STING1 interaction could offer therapeutic strategies for CM.

