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Isolation and Functional Characterization of Human Ventricular Cardiomyocytes from Fresh Surgical Samples
Published on: April 21, 2014
Apoptosis of ventricular myocytes: a means to an end
Kelly M Regula1, Lorrie A Kirshenbaum
1Institute of Cardiovascular Sciences, St. Boniface General Hospital Research Center, Room 3016, 351 Taché Avenue, Winnipeg, Man., Canada R2H 2A6.
Insights
Programmed cell death, or apoptosis, is critical in cardiology. Understanding genetic factors like caspases and Bcl-2 proteins helps develop therapies to prevent cardiac cell death in heart disease.
Area of Science:
- Cardiology
- Molecular Biology
- Cell Death Research
Background:
- Apoptosis, or programmed cell death, is a key factor in cardiovascular health.
- Genetic discoveries in C. elegans identified ced-3 and ced-9 genes, crucial for cell fate.
- These genes led to the discovery of mammalian caspases and Bcl-2 proteins, central to apoptosis regulation.
Purpose of the Study:
- To explore the role of apoptosis in contemporary cardiology.
- To investigate the mechanisms of caspase activation and mitochondrial death pathways.
- To highlight the therapeutic potential of targeting apoptosis for cardiac preservation.
Main Methods:
- Review of genetic studies on apoptosis regulation (C. elegans, mammalian homologs).
- Analysis of caspase activation pathways and mitochondrial involvement.
- Examination of Bcl-2 family protein functions in cell death modulation.
Main Results:
- Caspases, activated by death signals, dismantle cells biochemically and morphologically.
- Mitochondrial pathways release pro-apoptotic factors (cytochrome c, Smac/DIABLO) upon membrane potential loss.
- Bcl-2 proteins modulate apoptosis by influencing caspase activation and mitochondrial dysfunction.
Conclusions:
- Apoptosis is a significant issue in cardiology, particularly in ischemic heart disease and heart failure.
- Targeting apoptosis pathways, including caspases and Bcl-2 proteins, offers therapeutic strategies.
- Preventing inappropriate cardiac cell death is vital for preserving cardiac function and exploring cardiac regeneration.
Abstract:
One of the most compelling issues to impact on contemporary cardiology is arguably the phenomenon of programmed cell death or apoptosis. Studies in the nematode Caenorhabditis elegans provided the first indication that determinants of cell fate crucial for normal worm development were under genetic influences of the ced-3 and ced-9 genes, which promote or prevent cell death, respectively. Extrapolation of these seminal findings led to the discovery of the mammalian ced-3 and ced-9 homologs, which broadly encompass a family of cellular cysteine proteases known collectively as caspases and the Bcl-2 proteins. In quiescent cells, caspases exist as inactive zymogens that are readily activated by autocatalytic processes or by other caspases following a death signal. The caspase-dependent cleavage of intracellular substrates results in the biochemical dismantling of the cell and morphological features characteristic of apoptosis. Recently, a mitochondrial death pathway for apoptosis has been proposed. Perturbations to mitochondria resulting in the loss of mitochondrial membrane potential, DeltaPsim, permeability transition pore (PTP) opening and the release of pro-apoptotic factors by mitochondria including cytochrome c, second mitochondrial activator of caspases/direct IAP binding protein with low pI (Smac/DIABLO), AIF, and others are considered terminal events in the apoptotic pathway. Bcl-2 and related family members are characterized by their ability to promote or prevent cell death. These proteins exert their pro- or anti-apoptosis function by impinging on components of the cell death pathway that underlie caspase activation, mitochondrial dysfunction or both. The limited regenerative potential of the adult cardiac muscle itself, together with the heightened and exciting possibility of regenerating cardiac muscle with cardiac progenitor cells, acknowledges the need for new strategies to suppress and/or prevent inappropriate cardiac cell death in patients with ischemic heart disease or heart failure patients as a therapeutic means of preserving cardiac pump function after injury.
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