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Updated: Jun 7, 2026

2-Vessel Occlusion/Hypotension: A Rat Model of Global Brain Ischemia
Published on: June 22, 2013
Two structurally different T-type Ca 2+ channel inhibitors, mibefradil and pimozide, protect CA1 neurons from delayed
M Bancila1, J-C Copin, Y Daali
1Service de Neurochirurgie, Département des Neurosciences Cliniques, Hôpitaux Universitaires de Genève et Université de Genève, 1211 Geneva, Switzerland.
Abstract:
Recent in vitro evidence suggests that T-type Ca(2+) channels are implicated in the mechanisms of ischemia-induced delayed neuronal cell death. The aim of this work was to study the neuroprotective potential of mibefradil and pimozide, both T-type Ca(2+) channel inhibitors, in an in vivo rat model of global ischemia. We performed blinded and randomized placebo vs. treatment experiments using 57 animals to test mibefradil and fourteen animals to test pimozide. Each treated animal received a single stereotactic intraventricular injection of mibefradil or intraperitoneal injection of pimozide prior to transient global cerebral ischemia. The primary endpoint was the number of neurons surviving in the CA1 region 72 h after insult as evaluated by NeuN-labeled cell counts. All physiological variables monitored immediately before and after ischemic insult were equivalent between all groups. Surviving neurons in the CA1 region were significantly more frequent in the treated groups compared to the placebo group (mibefradil: 36.8 ± 2.8 cells in a 200 × 100 μm counting area vs. placebo: 25.2 ± 3.2 [P < 0.01]; pimozide: 39.4 ± 1.12 vs. placebo: 27.8 ± 0.7 [P < 0.0001]). Thus, administration of mibefradil or pimozide effectively prevents neuronal death after ischemia in a rat model of global ischemia. This study provides further support for a neuroprotective effect of T-type Ca(2+) current inhibition during ischemia.
Insights
T-type calcium channel inhibitors mibefradil and pimozide demonstrated significant neuroprotection in a rat model of global ischemia. These findings support T-type calcium channel inhibition as a therapeutic strategy against ischemic neuronal cell death.
Area of Science:
- Neuroscience
- Pharmacology
- Cardiovascular Research
Background:
- T-type calcium channels are implicated in ischemia-induced delayed neuronal cell death.
- Inhibition of these channels may offer a neuroprotective strategy.
Purpose of the Study:
- To investigate the in vivo neuroprotective potential of T-type calcium channel inhibitors mibefradil and pimozide.
- To evaluate their efficacy in a rat model of global cerebral ischemia.
Main Methods:
- Blinded, randomized placebo-controlled study in rats subjected to transient global cerebral ischemia.
- Administration of mibefradil or pimozide prior to ischemic insult.
- Quantification of surviving neurons in the CA1 region 72 hours post-ischemia using NeuN staining.
Main Results:
- Both mibefradil and pimozide significantly increased neuronal survival in the CA1 region compared to placebo.
- Mibefradil showed a significant increase (P < 0.01) and pimozide (P < 0.0001).
- Physiological parameters remained consistent across all experimental groups.
Conclusions:
- Mibefradil and pimozide effectively prevent neuronal death following global ischemia in rats.
- T-type calcium channel inhibition demonstrates a promising neuroprotective effect during ischemic events.
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