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Characterization and Isolation of Mouse Primary Microglia by Density Gradient Centrifugation
Published on: February 16, 2018
Effect of hypothermia on microglial reaction in ischemic brain
Abstract:
Intra-ischemic hypothermia is known to protect neurons against ischemic injury. Microglial cells have been shown to become activated following ischemia and are speculated to play significant roles in the evolution of ischemic neuronal injury. In this study, we examined the effect of intra-ischemic hypothermia on the microglial reaction in the hippocampus following transient forebrain ischemia produced in gerbils by 10 min bilateral carotid occlusion at 30 degrees C or at 37 degrees C, followed by normothermic reperfusion for 1-7 days. Microglial cells were visualized by histochemical staining with isolectin-B4 from Griffonia simplicifolia. Brains subjected to normothermic ischemia showed activation of microglia at 1 day post-ischemia; this increased with further recirculation, becoming intense by 3 days and diminished by 7 days. Ischemia under hypothermic conditions was not associated with activation of microglia, and these brains showed no significant neuronal damage, whereas the brains subjected to normothermic ischemia showed extensive neuronal necrosis in the CA1 region after 1 and 7 days reperfusion. The presence of activated microglial cells in the CA1 region prior to and in parallel with evolution of ischemic neuronal damage, the lack of such activation in brains subjected to the neuroprotective action of intra-ischemic hypothermia, together with the known potential capability of microglial cells to release cytotoxic substances appear to indicate that these cells could contribute significantly to ischemic neuronal necrosis.
Insights
Intra-ischemic hypothermia significantly reduces neuronal damage after ischemic injury by preventing microglial cell activation. This neuroprotective effect highlights hypothermia
Area of Science:
- Neuroscience
- Cell Biology
- Pathology
Background:
- Ischemic injury triggers microglial cell activation, implicated in neuronal damage.
- Intra-ischemic hypothermia is a known neuroprotective strategy against ischemic injury.
Purpose of the Study:
- To investigate the impact of intra-ischemic hypothermia on microglial activation following transient forebrain ischemia.
- To correlate microglial response with neuronal survival or necrosis in the hippocampus.
Main Methods:
- Transient forebrain ischemia induced in gerbils via carotid occlusion under normothermic (37°C) or hypothermic (30°C) conditions.
- Microglial cells visualized using isolectin-B4 histochemical staining.
- Neuronal damage assessed in the CA1 region after 1-7 days of reperfusion.
Main Results:
- Normothermic ischemia led to progressive microglial activation, peaking at 3 days post-ischemia.
- Hypothermic ischemia prevented microglial activation and significantly reduced neuronal necrosis.
- Extensive neuronal necrosis was observed in the CA1 region following normothermic ischemia.
Conclusions:
- Activated microglia correlate with the progression of ischemic neuronal damage.
- Intra-ischemic hypothermia's neuroprotective effect is associated with suppressed microglial activation.
- Microglial cells may significantly contribute to ischemic neuronal necrosis via cytotoxic substance release.

