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Updated: Aug 15, 2025

Two-vessel Occlusion Mouse Model of Cerebral Ischemia-reperfusion
Published on: March 1, 2019
Neuronal melatonin type 1 receptor overexpression promotes M2 microglia polarization in cerebral
Yalikun Suofu1, Abhishek Jauhari1, Emilia S Nirmala1
1Neuroapoptosis Laboratory, Department of Neurological Surgery, University of Pittsburgh School of Medicine, Pittsburgh, PA, USA.
Abstract:
Microglial activation is readily detected following cerebral ischemia/reperfusion-induced injury. Activated microglia polarize into either classic pro-inflammatory M1 or protective M2 microglia following ischemia/reperfusion-induced injury. Melatonin is protective immediately after ischemia/reperfusion-induced brain injury. However, the ability of melatonin to affect longer-term recovery from ischemic/reperfusion-induced injury as well as its ability to modulate microglia/macrophage polarization are unknown. The goal of this study is to understand the impact of melatonin on mice 14 days after injury, as well as to understand how melatonin affects microglial polarization of neuronal MT1 activation following cerebral ischemia/reperfusion. We utilized NSEMT1-GFP transgenic mice which overexpress MT1 (melatonin type 1 receptor) in neurons. Melatonin-treated or vehicle treated wild type and NSEMT1-GFP mice underwent middle cerebral artery occlusion (MCAO)/reperfusion and followed for 14 days. Neuronal MT1 overexpression significantly reduced infarct volumes, improved motor function, and ameliorated weight loss. Additionally, melatonin treatment reduced infarct volume in NSEMT1-GFP mice as compared to untreated wild type, melatonin treated wild type, and untreated NSEMT1-GFP mice. Melatonin improved neurological function and prevented weight loss in NSEMT1-GFP mice compared with melatonin treated wild type mice. Finally, melatonin treatment in combination with MT1 overexpression reduced the numbers of Iba1+/CD16+ M1 microglia and increased the numbers of Iba1+/ CD206+ M2 microglia after ischemic injury. In conclusion, neuronal MT1 mediates melatonin-induced long-term recovery after cerebral ischemia, at least in part, by shifting microglial polarization toward the neuroprotective M2 phenotype.
Insights
Melatonin aids long-term recovery after ischemic brain injury by promoting neuroprotective M2 microglia. This study shows melatonin shifts microglial polarization toward the M2 phenotype, improving outcomes.
Area of Science:
- Neuroscience
- Immunology
- Pharmacology
Background:
- Cerebral ischemia/reperfusion injury triggers microglial activation, polarizing them into M1 (pro-inflammatory) or M2 (protective) phenotypes.
- Melatonin offers immediate protection post-ischemia, but its long-term effects on recovery and microglial polarization remain unclear.
Purpose of the Study:
- To investigate melatonin's impact on long-term recovery (14 days) after ischemic injury.
- To determine how melatonin modulates microglial polarization, specifically via neuronal MT1 receptor activation.
Main Methods:
- Utilized NSE-MT1-GFP transgenic mice overexpressing the melatonin type 1 receptor (MT1) in neurons.
- Administered melatonin or vehicle to wild-type and transgenic mice subjected to middle cerebral artery occlusion (MCAO)/reperfusion, followed for 14 days.
- Assessed infarct volume, motor function, weight changes, and microglial phenotypes (Iba1+/CD16+ M1 vs. Iba1+/CD206+ M2).
Main Results:
- Neuronal MT1 overexpression significantly reduced infarct size, improved motor function, and prevented weight loss.
- Melatonin treatment further reduced infarct volume and improved neurological function and weight recovery in transgenic mice.
- Melatonin, combined with MT1 overexpression, decreased M1 microglia and increased M2 microglia post-injury.
Conclusions:
- Neuronal MT1 receptor activation mediates melatonin's long-term neuroprotective effects after cerebral ischemia.
- Melatonin promotes recovery by shifting microglial polarization towards the beneficial M2 phenotype.
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