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Updated: Jun 25, 2026

Caspase-3 Activity in the Rat Amygdala Measured by Spectrofluorometry After Myocardial Infarction
Published on: January 12, 2016
Activation of caspase-3 may not contribute to postresuscitation myocardial dysfunction
Jeejabai Radhakrishnan1, Iyad M Ayoub, Raúl J Gazmuri
1Medical Service (111F North Chicago VA Medical Center, 3001 Green Bay Road, North Chicago, IL 60064, USA.
Insights
Caspase-3 activation in rats after cardiac arrest did not cause DNA fragmentation or worsen heart dysfunction. Intrinsic anti-apoptotic mechanisms may offer protection following resuscitation.
Area of Science:
- Cardiovascular Science
- Cellular Biology
- Biochemistry
Background:
- Postresuscitation myocardial dysfunction is linked to cytochrome c release and caspase-3 activation.
- The role of caspase-3 in apoptotic DNA fragmentation and myocardial dysfunction post-resuscitation requires further investigation.
Purpose of the Study:
- To determine if caspase-3 activation leads to apoptotic DNA fragmentation after resuscitation from ventricular fibrillation (VF).
- To assess if caspase-3 inhibition mitigates myocardial dysfunction post-resuscitation.
- To examine if sodium-hydrogen exchanger isoform-1 (NHE-1) inhibition's protective effects involve caspase-3 inhibition.
Main Methods:
- Utilized a rat model of closed-chest resuscitation following 4 or 8 minutes of untreated VF.
- Measured left ventricular stroke work index, cytosolic cytochrome c, caspase-9 and caspase-3 fragments, and caspase-3 activity.
- Administered caspase-3 inhibitor (z-Asp-Glu-Val-Asp) or NHE-1 inhibitor (cariporide) before VF induction.
Main Results:
- Resuscitation induced significant left ventricular dysfunction and increased caspase-3 activity, indicating mitochondrial apoptotic pathway activation.
- No evidence of apoptotic DNA fragmentation was observed.
- Caspase-3 inhibition failed to prevent myocardial dysfunction despite reduced caspase-3 activity.
- NHE-1 inhibition did not alter caspase-3 activity.
Conclusions:
- Caspase-3 activation does not cause DNA fragmentation or contribute to myocardial dysfunction in this VF resuscitation model.
- Intrinsic antiapoptotic mechanisms activated downstream of caspase-3 may play a protective role.
Abstract:
We have previously reported that postresuscitation myocardial dysfunction is accompanied by the release of cytochrome c and caspase-3 activation. We now investigated the role of caspase-3 activation by examining whether such process prompts apoptotic DNA fragmentation, whether caspase-3 inhibition attenuates myocardial dysfunction, and whether myocardial protective effects of sodium-hydrogen exchanger isoform-1 (NHE-1) inhibition involve caspase-3 inhibition using a rat model of ventricular fibrillation (VF) of closed-chest resuscitation. Resuscitation after 4 or 8 min of untreated VF caused significant reductions in left ventricular stroke work index averaging 23% of sham control rats at 4 h postresuscitation. Left ventricular dysfunction was accompanied by increases in cytosolic cytochrome c, decreases in pro- and cleaved caspase-9 fragments, increases in 17-kDa caspase-3 fragments, and increases in caspase-3 activity indicating the activation of the mitochondrial apoptotic pathway but without evidence of apoptotic DNA fragmentation. In addition, levels of heat shock protein 70 were increased and levels of X-linked inhibitor of apoptosis protein and alphabeta-crystallin were preserved, all of which can exert antiapoptotic effects. In a separate series, the caspase-3 inhibitor z-Asp-Glu-Val-Asp chloromethyl ketone given before the induction of VF failed to prevent postresuscitation myocardial dysfunction despite reductions in caspase-3 activity (2.3 +/- 0.5 vs. 1.3 +/- 0.5 pmol fluorophore AFC released.mg protein(-1).min-1; P < 0.03). Treatment with the NHE-1 inhibitor cariporide had no effect on caspase-3 activity. Accordingly, in this rat model of VF and severe postresuscitation myocardial dysfunction, activation of caspase-3 did not lead to DNA fragmentation or contribute to myocardial dysfunction. Concomitant activation of intrinsic antiapoptotic mechanisms could play a protective role downstream to caspase-3 activation.
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