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Intravital Microscopy of the Mouse Brain Microcirculation using a Closed Cranial Window
Published on: November 18, 2010
Dynamic intravital imaging reveals reactive vessel-associated microglia play a protective role in cerebral malaria
Olivia D Solomon1,2,3, Paula Villarreal1,2,3, Nadia D Domingo4,5
1The Institute for Translational Sciences, University of Texas Medical Branch, Galveston, TX, 77555, USA.
Abstract:
Vascular congestion and coagulopathy have been shown to play a role in human and experimental cerebral malaria (eCM), but little is known about the role of microglia, or microglia-vascular interactions and hypercoagulation during disease progression in this fatal infection. Recent studies show microglia bind to fibrinogen, a glycoprotein involved in thrombosis. An eCM model of Plasmodium chabaudi infection in mice deficient in the regulatory cytokine IL-10 manifests neuropathology, including hypercoagulation with extensive fibrin(ogen) deposition and neuroinflammation. Intravital microscopy and immunofluorescence are applied to elucidate the role of microglia in eCM. Results show microgliosis and coagulopathy occur early in disease at 3 dpi (day post-infection), and both are exacerbated as disease progresses to 7dpi. Vessel associated microglia increase significantly at 7 dpi, and the expression of the microglial chemoattractant CCL5 (RANTES) is increased versus uninfected and localized with fibrin(ogen) in vessels. PLX3397 microglia depletion resulted in rapid behavioral decline, severe hypothermia, and greater increase in vascular coagulopathy. This study suggests that microglia play a prominent role in controlling infection-initiated coagulopathy and supports a model in which microglia play a protective role in cerebral malaria by migrating to and patrolling the cerebral vasculature, potentially regulating degree of coagulation during systemic inflammation.
Insights
Microglia play a protective role in experimental cerebral malaria (eCM) by controlling vascular coagulopathy. Depleting microglia worsened disease, suggesting they regulate coagulation during inflammation.
Area of Science:
- Neuroscience
- Immunology
- Pathology
Background:
- Cerebral malaria (eCM) involves vascular congestion and coagulopathy.
- The role of microglia and their interaction with vasculature in eCM is poorly understood.
- Microglia bind to fibrinogen, a key factor in thrombosis.
Purpose of the Study:
- To elucidate the role of microglia in the progression of experimental cerebral malaria (eCM).
- To investigate microglia-vascular interactions and hypercoagulation during eCM.
- To understand microglia's role in controlling infection-initiated coagulopathy.
Main Methods:
- Utilized an eCM model (Plasmodium chabaudi infection in IL-10 deficient mice).
- Employed intravital microscopy and immunofluorescence.
- Administered PLX3397 for microglia depletion.
Main Results:
- Microgliosis and coagulopathy were observed early (3 dpi) and worsened by 7 dpi.
- Vessel-associated microglia and CCL5 (RANTES) expression increased, co-localizing with fibrin(ogen).
- Microglia depletion led to worsened behavioral decline, hypothermia, and vascular coagulopathy.
Conclusions:
- Microglia play a significant role in controlling infection-initiated coagulopathy in eCM.
- Microglia migrate to and patrol cerebral vasculature, potentially regulating coagulation.
- Microglia exhibit a protective function in cerebral malaria by managing vascular complications.
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