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Focal Cerebral Ischemia Model by Endovascular Suture Occlusion of the Middle Cerebral Artery in the Rat
Published on: February 5, 2011
Caspase mRNA expression in a rat model of focal cerebral ischemia
D C Harrison1, R P Davis, B C Bond
1Department of Neurology, GlaxoSmithKline, New Frontiers Science Park, Third Avenue, Harlow, Essex CM19 5AW, UK. david_c_harrison@sbphrd.com
Abstract:
Proteins of the caspase family are involved in the signalling pathway that ultimately leads to programmed cell death (apoptosis), which has been reported to occur in some experimental models of stroke. In a previous paper we used quantitative reverse transcription and polymerase chain reaction (RT-PCR) to characterise changes in the mRNA expression of one member of this family, caspase-3, in a rat model of permanent focal ischemia. Here we have used this technique to study the expression of a further three caspases which are involved in different aspects of caspase signalling. Caspase-8, involved in Fas-mediated apoptosis, was upregulated in the cortex of ischemic rats. Caspase-11, which leads to the synthesis of the functional form of the cytokine interleukin-1 beta, also showed increased expression, but with a different temporal profile from caspase-8. In contrast, caspase-9, which forms part of the pathway signalling through the mitochondria, showed a decrease in expression. The expression of a further four caspases (1, 2, 6 and 7) has also been characterised in a simpler experiment. These caspases all showed distinctive patterns of expression following the induction of ischemia. These data lead us to conclude that caspase expression as a whole is under very strict transcriptional control in this model. Certain elements of caspase signalling, such as the Fas-induced pathway and the events upstream of IL-1 beta processing, are upregulated, while others are not. This may be due to some form of genetic program activated in response to ischemia in the brain and may highlight which biological pathways are modulated.
Insights
This study investigated caspase gene expression in a rat stroke model, finding distinct upregulation and downregulation patterns. These changes suggest programmed cell death pathways are tightly regulated in response to brain ischemia.
Area of Science:
- Neuroscience
- Molecular Biology
- Cell Biology
Background:
- Caspase proteins are key mediators of programmed cell death (apoptosis).
- Apoptosis is implicated in experimental stroke models.
- Previous work characterized caspase-3 mRNA expression in rat focal ischemia.
Purpose of the Study:
- To investigate the mRNA expression of caspases-8, -11, and -9 in a rat model of permanent focal ischemia.
- To characterize the expression patterns of additional caspases (1, 2, 6, and 7) following ischemic induction.
- To understand the transcriptional regulation of caspase signaling pathways in response to stroke.
Main Methods:
- Quantitative reverse transcription and polymerase chain reaction (RT-PCR) to measure mRNA expression levels.
- Analysis of caspase expression in the cortex of ischemic rats.
- Comparison of temporal expression profiles for different caspases.
Main Results:
- Caspase-8, involved in Fas-mediated apoptosis, was upregulated in ischemic rat cortex.
- Caspase-11 expression increased, with a distinct temporal profile compared to caspase-8.
- Caspase-9, linked to mitochondrial signaling, showed decreased expression.
- Caspases 1, 2, 6, and 7 exhibited unique expression patterns post-ischemia.
Conclusions:
- Caspase gene expression is under strict transcriptional control in this ischemic stroke model.
- Specific apoptotic pathways, including Fas-induced apoptosis and IL-1 beta processing, are upregulated.
- These findings suggest an ischemia-activated genetic program modulating specific biological pathways in the brain.

