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Updated: Jun 10, 2026

Mouse Model of Intraluminal MCAO: Cerebral Infarct Evaluation by Cresyl Violet Staining
Published on: November 6, 2012
Astrocytic calcium release mediates peri-infarct depolarizations in a rodent stroke model
Insights
Peri-infarct depolarizations (PIDs) worsen stroke by increasing calcium in brain cells. Blocking IP3R2 in astrocytes reduces PIDs, improving neuronal survival and offering a potential stroke therapy target.
Area of Science:
- Neuroscience
- Cellular Biology
- Stroke Research
Background:
- Stroke is a leading cause of death and disability.
- Peri-infarct depolarizations (PIDs) exacerbate stroke damage.
- The cellular mechanisms driving PIDs are not fully understood.
Purpose of the Study:
- To investigate the cellular pathways underlying PIDs.
- To determine the role of astroglial calcium signaling in PIDs.
- To explore potential therapeutic targets for stroke.
Main Methods:
- In vivo multiphoton microscopy
- Laser speckle imaging of cerebral blood flow (CBF)
- Electrophysiological recordings in a mouse model of focal ischemia
- Utilized Ip3r2-deficient mice
Main Results:
- PIDs are associated with increased intracellular calcium in astrocytes and neurons.
- Astroglial calcium elevations during PIDs are mediated by IP3R2-dependent release.
- Ip3r2-deficient mice showed reduced PID frequency and increased neuronal survival.
- Reduced glutamate release and extracellular accumulation in Ip3r2-deficient mice ameliorated calcium overload.
Conclusions:
- Astroglial IP3R2-dependent calcium signaling is crucial for PIDs.
- Targeting astroglial calcium pathways may offer a novel therapeutic strategy for stroke.
- Blocking IP3R2 reduces PID burden and enhances neuronal survival post-stroke.
Abstract:
Stroke is one of the most common diseases and a leading cause of death and disability. Cessation of cerebral blood flow (CBF) leads to cell death in the infarct core, but tissue surrounding the core has the potential to recover if local reductions in CBF are restored. In these areas, detrimental peri-infarct depolarizations (PIDs) contribute to secondary infarct growth and negatively affect stroke outcome. However, the cellular pathways underlying PIDs have remained unclear. Here, we have used in vivo multiphoton microscopy, laser speckle imaging of CBF, and electrophysiological recordings in a mouse model of focal ischemia to demonstrate that PIDs are associated with a strong increase of intracellular calcium in astrocytes and neurons. We found that astroglial calcium elevations during PIDs are mediated by inositol triphosphate receptor type 2-dependent (IP3R2-dependent) release from internal stores. Importantly, Ip3r2-deficient mice displayed a reduction of PID frequency and overall PID burden and showed increased neuronal survival after stroke. These effects were not related to local CBF changes in response to PIDs. However, we showed that the release and extracellular accumulation of glutamate during PIDs is strongly curtailed in Ip3r2-deficient mice, resulting in ameliorated calcium overload in neurons and astrocytes. Together, these data implicate astroglial calcium pathways as potential targets for stroke therapy.

