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.

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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