Related Experiment Video
Updated: Jun 18, 2026

The Application Of Permanent Middle Cerebral Artery Ligation in the Mouse
Published on: July 25, 2011
Microglial involvement in neuroplastic changes following focal brain ischemia in rats
Alexandre Madinier1, Nathalie Bertrand, Claude Mossiat
1Unité INSERM U887 Motricité-Plasticité, Dijon, France.
Abstract:
The pathogenesis of ischemic stroke is a complex sequence of events including inflammatory reaction, for which the microglia appears to be a major cellular contributor. However, whether post-ischemic activation of microglial cells has beneficial or detrimental effects remains to be elucidated, in particular on long term brain plasticity events. The objective of our study was to determine, through modulation of post-stroke inflammatory response, to what extent microglial cells are involved in some specific events of neuronal plasticity, neurite outgrowth and synaptogenesis. Since microglia is a source of neurotrophic factors, the identification of the brain-derived neurophic factor (BDNF) as possible molecular actor involved in these events was also attempted. As a means of down-regulating the microglial response induced by ischemia, 3-aminobenzamide (3-AB, 90 mg/kg, i.p.) was used to inhibit the poly(ADP-ribose) polymerase-1 (PARP-1). Indeed, PARP-1 contributes to the activation of the transcription factor NF-kB, which is essential to the upregulation of proinflammatory genes, in particular responsible for microglial activation/proliferation. Experiments were conducted in rats subjected to photothrombotic ischemia which leads to a strong and early microglial cells activation/proliferation followed by an infiltration of macrophages within the cortical lesion, events evaluated at serial time points up to 1 month post-ictus by immunostaining for OX-42 and ED-1. Our most striking finding was that the decrease in acute microglial activation induced by 3-AB was associated with a long term down-regulation of two neuronal plasticity proteins expression, synaptophysin (marker of synaptogenesis) and GAP-43 (marker of neuritogenesis) as well as to a significant decrease in tissue BDNF production. Thus, our data argue in favour of a supportive role for microglia in brain neuroplasticity stimulation possibly through BDNF production, suggesting that a targeted protection of microglial cells could represent an innovative approach to potentiate post-stroke neuroregeneration.
Insights
In ischemic stroke, reducing microglial activation with 3-aminobenzamide (3-AB) impaired long-term neuronal plasticity and brain-derived neurotrophic factor (BDNF) production. This suggests microglia support brain repair after stroke.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglia play a key role in the inflammatory response following ischemic stroke.
- The precise role of microglial activation in long-term brain plasticity remains unclear.
Purpose of the Study:
- To investigate the involvement of microglial cells in neuronal plasticity events like neurite outgrowth and synaptogenesis after stroke.
- To explore the role of brain-derived neurotrophic factor (BDNF) in these processes.
- To modulate the post-stroke inflammatory response and assess its impact on microglial activity.
Main Methods:
- Rats underwent photothrombotic ischemia to induce microglial activation.
- 3-aminobenzamide (3-AB) was administered to inhibit poly(ADP-ribose) polymerase-1 (PARP-1) and down-regulate microglial response.
- Immunostaining (OX-42, ED-1) evaluated microglial and macrophage activity up to 1 month post-stroke.
- Expression of synaptophysin, GAP-43, and BDNF levels were assessed.
Main Results:
- Inhibition of acute microglial activation by 3-AB led to long-term downregulation of synaptophysin and GAP-43 expression.
- A significant decrease in tissue BDNF production was observed in 3-AB treated rats.
- Reduced microglial activation correlated with impaired markers of synaptogenesis and neuritogenesis.
Conclusions:
- Microglial cells appear to play a supportive role in stimulating brain neuroplasticity, potentially via BDNF production.
- Targeted protection of microglial cells may offer a novel strategy for enhancing post-stroke neuroregeneration.

