Cell death and autophagy: cytokines, drugs, and nutritional factors

Wilfried Bursch1, Anneliese Karwan, Miriam Mayer

  • 1Medical University of Vienna, Department of Medicine I, Institute of Cancer Research, Borschkegasse 8a, A-1090 Vienna, Austria. wilfried.bursch@meduniwien.ac.at

Toxicology
|August 13, 2008
PubMed

Insights

Cells can undergo programmed cell death through various pathways, including autophagy, apoptosis, and necrosis. Tamoxifen treatment in cancer cells demonstrates how these pathways can be modulated by cellular damage and metabolic stress, influencing cell fate.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Cancer Research

Background:

  • Cells possess multiple self-destruction pathways, including autophagy, apoptosis, and necrosis.
  • Autophagy, a cellular process involving the degradation of damaged components, plays a role in both cell survival and death.
  • Tamoxifen (TAM), an anti-estrogen drug, can induce distinct cell death pathways in cancer cells.

Purpose of the Study:

  • To investigate the role of autophagy in different cell death pathways.
  • To explore how tamoxifen (TAM) influences cell death mechanisms in cancer cells.
  • To understand the interplay between autophagy, apoptosis, and necrosis in response to cellular stress.

Main Methods:

  • Treatment of human mammary carcinoma cells (MCF-7) and HL60 cells with varying doses of tamoxifen (TAM).
  • Analysis of protein expression, including nuclear proteins like GST-pi and proteasomal subunits, during autophagic cell death.
  • Assessment of cell fate (autophagy, apoptosis, necrosis) in response to TAM and metabolic challenges (glucose/amino acid deprivation).

Main Results:

  • Tamoxifen treatment at low doses (≤1 microM) induced autophagic cell death in MCF-7 cells, affecting specific nuclear proteins.
  • MCF-7 cells exhibited a switch between autophagic and apoptotic cell death depending on caspase-3 activity.
  • Higher TAM doses (10 microM) induced necrosis, while transient exposure allowed recovery via autophagy, potentially involving aggresome formation.
  • HL60 cells showed dose-dependent responses to TAM, with autophagy predominant at 1-5 microM, apoptosis at 7-9 microM, and necrosis at 15 microM.
  • Metabolic stress (glucose/amino acid deprivation) in hepatoma cells induced a pro-apoptotic effect, which could be modulated by compounds like 2-deoxyglucose.

Conclusions:

  • Cellular response to stimuli is flexible, with a gradual shift between autophagy, apoptosis, and necrosis.
  • Autophagy serves as a survival strategy against metabolic stress and a mechanism for clearing damaged cellular components.
  • The interplay between autophagy and other cell death pathways is crucial in determining cell fate and may be linked to cell number regulation.

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