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Updated: Aug 22, 2026

Examining BCL-2 Family Function with Large Unilamellar Vesicles
Published on: October 5, 2012
Proapoptotic N-truncated BCL-xL protein activates endogenous mitochondrial channels in living synaptic terminals
Elizabeth A Jonas1, John A Hickman, Mushtaque Chachar
1Department of Pharmacology, Yale University School of Medicine, 333 Cedar Street, New Haven, CT 06520, USA.
Abstract:
Neuronal death is often preceded by functional alterations at nerve terminals. Anti- and proapoptotic BCL-2 family proteins not only regulate the neuronal death pathway but also affect excitability of healthy neurons. We found that exposure of squid stellate ganglia to hypoxia, a death stimulus for neurons, causes a cysteine protease-dependent loss of full-length antiapoptotic BCL-xL, similar to previous findings in mammalian cells. Therefore, to determine the direct effect of the naturally occurring proapoptotic cleavage product of BCL-xL on mitochondria, recombinant N-truncated BCL-xL was applied to mitochondria inside the squid presynaptic terminal and to purified mitochondria isolated from yeast. N-truncated BCL-xL rapidly induced large multi-conductance channels with a maximal conductance significantly larger than those produced by full-length BCL-xL. This activity required the hydrophobic C terminus and the BH3 domain of BCL-xL. Moreover, N-truncated BCL-xL failed to produce any channel activity when applied to plasma membranes, suggesting that a component of the mitochondrial membrane is necessary for its actions. Consistent with this idea, the large channels induced by N-truncated BCL-xL are inhibited by NADH and require the presence of VDAC, a voltage-dependent anion channel present in the outer mitochondrial membrane. These observations suggest that the mitochondrial channels specific to full-length and N-truncated BCL-xL contribute to their opposite effects on synaptic transmission, and are consistent with their opposite effects on the cell death pathway.
Insights
Truncated BCL-xL protein forms large channels in mitochondria, impacting neuronal function and cell death pathways. This cleavage product differs significantly from full-length BCL-xL in its mitochondrial activity.
Area of Science:
- Neuroscience
- Cell Biology
- Biochemistry
Background:
- Neuronal death involves functional changes at nerve terminals.
- BCL-2 family proteins regulate both neuronal death and excitability.
- Hypoxia induces loss of antiapoptotic BCL-xL in neurons.
Purpose of the Study:
- To investigate the direct effects of N-truncated BCL-xL on mitochondria.
- To characterize the channel activity of N-truncated BCL-xL.
- To determine the role of mitochondrial components in N-truncated BCL-xL activity.
Main Methods:
- Application of recombinant N-truncated BCL-xL to squid and yeast mitochondria.
- Electrophysiological recordings of mitochondrial channels.
- Investigating the role of BCL-xL domains and mitochondrial membrane components.
Main Results:
- N-truncated BCL-xL rapidly induced large multi-conductance channels in mitochondria.
- Channel formation required the C terminus and BH3 domain of BCL-xL.
- Activity was specific to mitochondria, inhibited by NADH, and dependent on VDAC.
Conclusions:
- N-truncated BCL-xL forms distinct mitochondrial channels compared to full-length BCL-xL.
- These channels likely mediate the opposite effects of BCL-xL forms on synaptic transmission and cell death.
- Mitochondrial components are crucial for N-truncated BCL-xL channel activity.
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