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Updated: Aug 31, 2026

Examining BCL-2 Family Function with Large Unilamellar Vesicles
Published on: October 5, 2012
Bcl-2 inhibits the mitochondrial release of an apoptogenic protease
S A Susin1, N Zamzami, M Castedo
1Centre national de la Reccherche Scientifique-UPR420, F-94801 Villejuif, France.
Abstract:
Bcl-2 belongs to a family of apoptosis-regulatory proteins which incorporate into the outer mitochondrial as well as nuclear membranes. The mechanism by which the proto-oncogene product Bcl-2 inhibits apoptosis is thus far elusive. We and others have shown previously that the first biochemical alteration detectable in cells undergoing apoptosis, well before nuclear changes become manifest, is a collapse of the mitochondrial inner membrane potential (delta psi m), suggesting the involvement of mitochondrial products in the apoptotic cascade. Here we show that mitochondria contain a pre-formed approximately 50-kD protein which is released upon delta psi m disruption and which, in a cell-free in vitro system, causes isolated nuclei to undergo apoptotic changes such as chromatin condensation and internucleosomal DNA fragmentation. This apoptosis-inducing factor (AIF) is blocked by N-benzyloxycarbonyl-Val-Ala-Asp.fluoromethylketone (Z-VAD.fmk), an antagonist of interleukin-1 beta-converting enzyme (ICE)-like proteases that is also an efficient inhibitor of apoptosis in cells. We have tested the effect of Bcl-2 on the formation, release, and action of AIF. When preventing mitochondrial permeability transition (which accounts for the pre-apoptotic delta psi m disruption in cells), Bcl-2 hyperexpressed in the outer mitochondrial membrane also impedes the release of AIF from isolated mitochondria in vitro. In contrast, Bcl-2 does not affect the formation of AIF, which is contained in comparable quantities in control mitochondria and in mitochondria from Bcl-2-hyperexpressing cells. Furthermore, the presence of Bcl-2 in the nuclear membrane does not interfere with the action of AIF on the nucleus, nor does Bcl-2 hyperexpression protect cells against AIF. It thus appears that Bcl-2 prevents apoptosis by favoring the retention of an apoptogenic protease in mitochondria.
Insights
The anti-apoptotic protein Bcl-2 prevents programmed cell death by retaining apoptosis-inducing factor (AIF) within mitochondria. This mechanism blocks AIF release and subsequent nuclear apoptosis, highlighting Bcl-2
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Bcl-2 is an apoptosis-regulatory protein found in mitochondrial and nuclear membranes.
- The mechanism by which Bcl-2 inhibits apoptosis has remained unclear.
- Mitochondrial inner membrane potential collapse (Δψm) precedes nuclear changes in apoptosis.
Purpose of the Study:
- To investigate the role of mitochondria in apoptosis.
- To elucidate the mechanism of Bcl-2 in preventing apoptosis.
- To identify and characterize the apoptosis-inducing factor (AIF) released from mitochondria.
Main Methods:
- Investigated the release of a 50-kD mitochondrial protein (AIF) upon Δψm disruption.
- Assessed the apoptotic effects of AIF on isolated nuclei in a cell-free system.
- Utilized N-benzyloxycarbonyl-Val-Ala-Asp.fluoromethylketone (Z-VAD.fmk) to inhibit ICE-like proteases.
- Examined the impact of Bcl-2 overexpression on AIF formation, release, and action.
Main Results:
- A 50-kD mitochondrial protein (AIF) was identified, which induces chromatin condensation and DNA fragmentation in isolated nuclei upon release.
- AIF-induced apoptosis was inhibited by Z-VAD.fmk, an ICE-like protease antagonist.
- Bcl-2 overexpression prevented AIF release from mitochondria by inhibiting mitochondrial permeability transition.
- Bcl-2 did not affect AIF formation or its action on nuclei.
Conclusions:
- Bcl-2 prevents apoptosis by retaining the apoptogenic protease AIF within mitochondria.
- Bcl-2's anti-apoptotic function is mediated by inhibiting AIF release, not by affecting its formation or nuclear action.
- Mitochondrial integrity and AIF regulation are critical in the apoptotic cascade.
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