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Gutierrez, B. L.

Publications and source records attributed to Gutierrez, B. L..

2 recordsLinked to original sources

Innate immune responses to Plasmodium falciparum disrupt the blood-brain barrier

Plasmodium falciparum accumulation at the blood-brain barrier (BBB) is a hallmark of cerebral malaria, a life-threatening complication. Conversely, the contribution of the immune response to vascular injury has long been debated. Here, we studied the role of innate immune cells as potential effectors of vascular damage using a human in vitro 3D-BBB model. Parasite-stimulated immune cells from malaria-naive donors increased adhesion to microvessels, at least partly through LFA-1. This caused barrier disruption and inflammatory activation of BBB cells. Secretion of TNF-, IFN-{gamma}, and granzyme B by monocytes, NK and {gamma}{delta} T cells correlated with vascular injury, and accumulation of immune cells was required for local barrier damage. Our computational analysis disentangled pathogenic mechanisms driven specifically by either P. falciparum parasite or immune cells, as well as shared pathways. These findings demonstrate how vascular-immune interactions may contribute to vascular injury in cerebral malaria and point towards the potential of immunomodulatory therapeutics.

immunology↗

Febrile temperature enhances Plasmodium falciparum cytoadhesion by disrupting the endothelial glycocalyx

Fever, a universal host defense response in infection and inflammation, paradoxically contributes to neurological complications in malaria. Febrile temperatures are known to enhance parasite virulence protein expression, but direct effects on the human endothelium remain unknown. We found that a 1-hour exposure to 40 {degrees}C, representative of fever in children with cerebral malaria, increased adhesion of Plasmodium falciparum-infected red blood cells and neutrophils to 3D brain microvascular models displaying a wide wall shear stress gradient. Mechanistically, this brief hyperthermia triggered rapid endothelial glycocalyx shedding, exposing endothelial receptors for binding. This response was more pronounced in brain than in pulmonary microvessels, revealing a greater vulnerability of the cerebral vasculature to fever. Pharmacological inhibition of matrix metalloproteinase activity preserved glycocalyx integrity and abolished the temperature-induced increase in adhesion. These findings identify fever as a host-specific amplifier of malaria-associated microvascular pathology, highlighting the importance of antipyretic strategies to mitigate disease severity.

microbiology↗