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Detection of Mitochondria Membrane Potential to Study CLIC4 Knockdown-induced HN4 Cell Apoptosis In Vitro
Published on: July 17, 2018
Volume-sensitive chloride channels involved in apoptotic volume decrease and cell death
1Department of Cell Physiology, National Institute for Physiological Sciences, Okazaki 444-8585, Japan. okada@nips.ac.jp
Abstract:
Apoptosis is an essential process in organ development, tissue homeostasis, somatic cell turnover, and the pathogenesis of degenerative diseases. Apoptotic cell death occurs in response to a variety of stimuli in physiological and pathological circumstances. Efflux of K(+) and Cl(-) leads to apoptotic volume decrease (AVD) of the cell. Both mitochondrion-mediated intrinsic, and death receptor-mediated extrinsic, apoptotic stimuli have been reported to rapidly activate Cl(-) conductances in a large variety of cell types. In epithelial cells and cardiomyocytes, the AVD-inducing anion channel was recently determined to be the volume-sensitive outwardly rectifying (VSOR) Cl(-) channel which is usually activated by swelling under non-apoptotic conditions. Blocking the VSOR Cl(-) channel prevented cell death in not only epithelial and cardiac cells, but also other cell types, by inhibiting the induction of AVD and subsequent apoptotic events. Ischemia-reperfusion-induced apoptotic death in cardiomyocytes and brain neurons was also prevented by Cl(-) channel blockers. Furthermore, cancer cell apoptosis induced by the anti-cancer drug cisplatin was recently found to be associated with augmented activity of the VSOR Cl(-) channel and to be inhibited by a Cl(-) channel blocker. The apoptosis-inducing VSOR Cl(-) channel is distinct from ClC-3 and its molecular identity remains to be determined.
Insights
Apoptosis involves cell volume decrease via ion efflux. The volume-sensitive outwardly rectifying (VSOR) chloride channel drives this process and blocking it prevents cell death in various conditions.
Area of Science:
- Cell Biology
- Physiology
- Pathology
Background:
- Apoptosis is crucial for development and disease.
- Ion efflux, particularly K+ and Cl-, causes apoptotic volume decrease (AVD).
- Both intrinsic and extrinsic apoptotic pathways activate Cl- conductances.
Purpose of the Study:
- To investigate the role of the volume-sensitive outwardly rectifying (VSOR) Cl- channel in apoptosis.
- To determine if VSOR Cl- channel blockers can prevent apoptotic cell death.
Main Methods:
- Utilized epithelial cells and cardiomyocytes to identify the AVD-inducing anion channel.
- Examined the effect of VSOR Cl- channel blockers on apoptosis in various cell types.
- Investigated VSOR Cl- channel activity in cancer cell apoptosis induced by cisplatin.
Main Results:
- The VSOR Cl- channel was identified as the AVD-inducing anion channel in epithelial cells and cardiomyocytes.
- Blocking the VSOR Cl- channel inhibited AVD and prevented apoptotic cell death in multiple cell types.
- Cl- channel blockers also prevented ischemia-reperfusion-induced apoptosis and cisplatin-induced cancer cell apoptosis.
Conclusions:
- The VSOR Cl- channel plays a significant role in mediating apoptotic cell death.
- Targeting the VSOR Cl- channel with blockers is a potential therapeutic strategy for preventing pathological cell death.
- The precise molecular identity of the apoptosis-inducing VSOR Cl- channel, distinct from ClC-3, requires further investigation.
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