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Updated: Aug 9, 2026

Detection of Mitochondria Membrane Potential to Study CLIC4 Knockdown-induced HN4 Cell Apoptosis In Vitro
Published on: July 17, 2018
Biophysical properties of the apoptosis-inducing plasma membrane voltage-dependent anion channel
Nesar Akanda1, Fredrik Elinder
1Department of Biomedicine and Surgery, Division of Cell Biology, Linköpings Universitet, SE-581 85 Linköping, Sweden.
Abstract:
Ion channels in the plasma membrane play critical roles in apoptosis. In a recent study we found that a voltage-dependent anion channel in the plasma membrane (VDACpl) of neuronal hippocampal cell line (HT22) cells was activated during apoptosis and that channel block prevented apoptosis. Whether or not VDACpl is identical to the mitochondrial VDACmt has been debated. Here, we biophysically characterize the apoptosis-inducing VDACpl and compare it with other reports of VDACpls and VDACmt. Excised membrane patches of apoptotic HT22 cells were studied with the patch-clamp technique. VDACpl has a large main-conductance state (400 pS) and occasionally subconductance states of approximately 28 pS and 220 pS. The small subconductance state is associated with long-lived inactivated states, and the large subconductance state is associated with excision of the membrane patch and subsequent activation of the channel. The open-probability curve is bell shaped with its peak around 0 mV and is blocked by 30 microM Gd3+. The gating can be described by a symmetrical seven-state model with one open state and six closed or inactivated states. These channel properties are similar to those of VDACmt and other VDACpls and are discussed in relation to apoptosis.
Insights
A plasma membrane ion channel (VDACpl) activates during neuronal cell death (apoptosis). Biophysical characterization reveals its properties are similar to mitochondrial VDAC, suggesting a role in programmed cell death.
Area of Science:
- Cell Biology
- Neuroscience
- Biophysics
Background:
- Ion channels in the plasma membrane are crucial for apoptosis.
- A voltage-dependent anion channel in the plasma membrane (VDACpl) was previously found to be activated during apoptosis in HT22 cells.
- The identity of VDACpl versus the mitochondrial VDAC (VDACmt) remains debated.
Purpose of the Study:
- To biophysically characterize the VDACpl involved in apoptosis.
- To compare the properties of VDACpl with VDACmt and other reported VDACpls.
Main Methods:
- Patch-clamp technique applied to excised membrane patches of apoptotic HT22 cells.
- Analysis of channel conductance states, open probability, and gating kinetics.
Main Results:
- VDACpl exhibits a main conductance state of 400 pS and subconductance states (28 pS, 220 pS).
- Channel gating is voltage-dependent, with peak open probability around 0 mV, and is blocked by Gd3+.
- A seven-state model describes VDACpl gating, with properties similar to VDACmt.
Conclusions:
- The biophysical properties of VDACpl are consistent with those of VDACmt.
- These findings support a role for VDACpl in the apoptotic process of neuronal cells.
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