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Published on: April 24, 2021
Serpin protein CrmA suppresses hypoxia-mediated apoptosis of ventricular myocytes
R M Gurevich1, K M Regula, L A Kirshenbaum
1Institute of Cardiovascular Sciences, St Boniface General Hospital Research Centre, and the Department of Physiology, Faculty of Medicine, University of Manitoba, Winnipeg, Manitoba, Canada.
Background:
In this study, we ascertain whether caspase 8 activation and mitochondrial defects underlie apoptosis of ventricular myocytes during hypoxia. As an approach to circumvent the potential shortcomings surrounding the limited permeability and short half-life of the synthetic peptide inhibitors designed to block caspase activation, we constructed a replication-defective adenovirus encoding the serpin caspase inhibitor protein CrmA to ensure efficient and continual inhibition of caspase 8 activity during chronic hypoxia.
Methods And Results:
In contrast to normoxic cells, oxygen deprivation of postnatal ventricular myocytes for 24 hours resulted in a 9-fold increase (P<0.05) in apoptosis as determined by Hoechst 33258 staining and nucleosomal DNA laddering. Moreover, hypoxia provoked a 1.5-fold increase (P<0.01) in caspase 8-like activity. Furthermore, hypoxia provoked perturbations to mitochondria consistent with the mitochondrial death pathway, including permeability transition pore (PT) opening, loss of mitochondrial membrane potential ((m)), and cytochrome c release. Importantly, CrmA suppressed caspase 8 activity, PT pore changes, loss of (m), and apoptosis but had no effect on hypoxia-mediated cytochrome c release. Furthermore, Bongkrekic acid, an inhibitor of PT pore, prevented hypoxia-induced PT pore changes, loss of (m), and apoptosis but had no effect on hypoxia-mediated cytochrome c release.
Conclusions:
To our knowledge, we provide the first direct evidence for the operation of CrmA as an antiapoptotic factor in ventricular myocytes during prolonged durations of hypoxia. Furthermore, our data suggest that perturbations to mitochondria including PT pore changes and (m) loss are caspase-regulated events that appear to be separable from cytochrome c release.
Insights
This study shows that caspase 8 activation and mitochondrial dysfunction cause heart cell death during hypoxia. Inhibiting caspase 8 with CrmA protein prevents this apoptosis, highlighting a new therapeutic target.
Area of Science:
- Cardiovascular Biology
- Cell Death Mechanisms
- Molecular Cardiology
Background:
- Ventricular myocyte apoptosis during hypoxia is a significant concern.
- Caspase activation and mitochondrial dysfunction are implicated in this process.
- Conventional caspase inhibitors have limitations in efficacy and delivery.
Purpose of the Study:
- To investigate the roles of caspase 8 and mitochondrial defects in hypoxia-induced ventricular myocyte apoptosis.
- To evaluate the efficacy of a novel adenovirus-delivered caspase inhibitor, CrmA, in preventing this cell death.
Main Methods:
- Postnatal ventricular myocytes were subjected to 24-hour hypoxia.
- Apoptosis was assessed using Hoechst staining and DNA laddering.
- Caspase 8-like activity, mitochondrial membrane potential, and cytochrome c release were measured.
- Adenovirus encoding CrmA was used to inhibit caspase 8 activity.
Main Results:
- Hypoxia significantly increased ventricular myocyte apoptosis and caspase 8 activity.
- Mitochondrial perturbations, including permeability transition pore opening and membrane potential loss, were observed.
- CrmA treatment effectively suppressed caspase 8 activity, mitochondrial changes, and apoptosis.
- Cytochrome c release was not affected by CrmA or a permeability transition pore inhibitor.
Conclusions:
- CrmA acts as an effective antiapoptotic factor in ventricular myocytes during prolonged hypoxia.
- Mitochondrial permeability transition pore changes and membrane potential loss are caspase-regulated events in hypoxia-induced apoptosis.
- These caspase-regulated mitochondrial events are separable from cytochrome c release.
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