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Updated: Jun 28, 2026

Examining BCL-2 Family Function with Large Unilamellar Vesicles
Published on: October 5, 2012
BCL-2 is involved in preventing oxidant-induced cell death and in decreasing oxygen radical production
P A Amstad1, H Liu, M Ichimiya
1Department of Pathology, University of Maryland School of Medicine, Baltimore 21201, USA.
Abstract:
It has been hypothesized that programmed cell death is mediated, in part, through the formation of free radicals via oxidative pathways. Furthermore, it has been proposed that BCL-2 acts to inhibit cell death by interfering with the production of oxygen-derived free radicals induced by a wide variety of stimuli. In order to examine the antioxidant function of BCL-2, we transfected mouse epidermal cells JB6 clone 41 with the expression vector pD5-Neo-BCL-2 and studied the effect of BCL-2 overexpression on oxidant-induced cell death and on the production of reactive oxygen species. Compared to Neo control cells, BCL-2-expressing cells are more resistant to the killing and growth retardation induced by hydrogen peroxide, superoxide, or by the oxygen radical-generating quinone-containing compounds menadione, diaziquone and adriamycin. The latter compounds generate reactive oxygen species during bioreductive metabolism. In addition, the exposed cells die by necrosis rather than apoptosis. Hydroxyl radical levels generated by the quinone-containing agents were low in BCL-2-expressing JB6 cells compared to control Neo cells. BCL-2, however, does not change the activities of the major cellular antioxidant enzymes superoxide dismutase, catalase or glutathione peroxidase. On the other hand, the glutathione concentrations increased in BCL-2 overexpressing cells after oxidative challenge, while the opposite was true for control cells. Thus, our results suggest that BCL-2 inhibition of oxidant-induced cell death is mediated, at least in part, through an antioxidant pathway, and that this pathway involves glutathione.
Insights
The BCL-2 protein inhibits cell death caused by oxidative stress. This protective effect involves increasing glutathione levels, suggesting an antioxidant role for BCL-2 in cell survival.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Programmed cell death may involve free radical formation via oxidative pathways.
- The BCL-2 protein is proposed to inhibit cell death by interfering with oxygen-derived free radical production.
Purpose of the Study:
- To investigate the antioxidant function of BCL-2.
- To examine the effect of BCL-2 overexpression on oxidant-induced cell death and reactive oxygen species production in mouse epidermal cells.
Main Methods:
- Transfection of JB6 clone 41 mouse epidermal cells with a BCL-2 expression vector.
- Exposure of transfected cells to various oxidants (hydrogen peroxide, superoxide, menadione, diaziquone, adriamycin).
- Measurement of cell death, reactive oxygen species, hydroxyl radical levels, antioxidant enzyme activities, and glutathione concentrations.
Main Results:
- BCL-2-expressing cells showed increased resistance to oxidant-induced cell death and growth retardation.
- Oxidant exposure led to necrosis rather than apoptosis in BCL-2 overexpressing cells.
- Hydroxyl radical levels were lower in BCL-2-expressing cells.
- Glutathione concentrations increased in BCL-2 overexpressing cells after oxidative challenge, unlike control cells.
Conclusions:
- BCL-2 inhibits oxidant-induced cell death, at least partly, through an antioxidant pathway.
- This antioxidant pathway appears to involve glutathione.
- BCL-2's mechanism does not involve altering major antioxidant enzyme activities.
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