Related Experiment Video
Updated: Jul 16, 2026

Selective Depletion of Microglia from Cerebellar Granule Cell Cultures Using L-leucine Methyl Ester
Published on: July 7, 2015
Selective ablation of proliferating microglial cells exacerbates ischemic injury in the brain
Mélanie Lalancette-Hébert1, Geneviève Gowing, Alain Simard
1Department of Anatomy and Physiology, Laval University, Centre de Recherche du Centre Hospitalier de l'Université Laval, Quebec, Canada G1V 4G2.
Abstract:
Here we report in vivo evidence of a neuroprotective role of proliferating microglial cells in cerebral ischemia. Using transgenic mice expressing a mutant thymidine kinase form of herpes simplex virus driven by myeloid-specific CD11b promoter and ganciclovir treatment as a tool, we selectively ablated proliferating (Mac-2 positive) microglia after transient middle cerebral artery occlusion. The series of experiments using green fluorescent protein-chimeric mice demonstrated that within the first 72 h after ischemic injury, the Mac-2 marker [unlike Iba1 (ionized calcium-binding adapter molecule 1)] was preferentially expressed by the resident microglia. Selective ablation of proliferating resident microglia was associated with a marked alteration in the temporal dynamics of proinflammatory cytokine expression, a significant increase in the size of infarction associated with a 2.7-fold increase in the number of apoptotic cells, predominantly neurons, and a 1.8-fold decrease in the levels of IGF-1. A double-immunofluorescence analysis revealed a approximately 100% colocalization between IGF-1 positive cells and Mac-2, a marker of activated/proliferating resident microglia. Conversely, stimulation of microglial proliferation after cerebral ischemia by M-CSF (macrophage colony stimulating factor) resulted in a 1.9-fold increase in IGF-1 levels and a significant increase of Mac2+ cells. Our findings suggest that a postischemic proliferation of the resident microglial cells may serve as an important modulator of a brain inflammatory response. More importantly, our results revealed a marked neuroprotective potential of proliferating microglia serving as an endogenous pool of neurotrophic molecules such as IGF-1, which may open new therapeutic avenues in the treatment of stroke and other neurological disorders.
Insights
Proliferating microglia protect the brain after stroke by releasing IGF-1. Ablating these cells worsened stroke outcomes, highlighting their neuroprotective role in cerebral ischemia.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Cerebral ischemia triggers inflammatory responses involving microglia.
- The specific role of proliferating microglia in ischemic stroke remains unclear.
Purpose of the Study:
- To investigate the neuroprotective role of proliferating microglial cells in cerebral ischemia.
- To elucidate the mechanisms by which proliferating microglia exert their effects.
Main Methods:
- Used transgenic mice with selectively ablated proliferating microglia (Mac-2 positive) after middle cerebral artery occlusion.
- Analyzed inflammatory cytokine expression, infarct size, cell apoptosis, and Insulin-like Growth Factor 1 (IGF-1) levels.
- Stimulated microglial proliferation using macrophage colony-stimulating factor (M-CSF).
Main Results:
- Selective ablation of proliferating microglia increased infarct size and neuronal apoptosis.
- Ablation led to decreased IGF-1 levels, which colocalized with Mac-2 positive microglia.
- Stimulating microglial proliferation increased IGF-1 levels and Mac-2 positive cell numbers.
Conclusions:
- Postischemic proliferation of resident microglia modulates brain inflammation.
- Proliferating microglia possess neuroprotective potential by providing neurotrophic factors like IGF-1.
- Targeting microglial proliferation may offer new therapeutic strategies for stroke and neurological disorders.

