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A redox signaling mechanism for density-dependent inhibition of cell growth

G Pani1, R Colavitti, B Bedogni

  • 1Institute of General Pathology, Catholic University Medical School, 00168 Rome, Italy.

Insights

Cell density limits growth by reducing reactive oxygen species (ROS), impairing cell signaling. Lowering ROS in sparse cells mimics contact inhibition, while adding ROS stimulates growth in confluent cells.

Area of Science:

  • Cell Biology
  • Biochemistry
  • Signal Transduction

Background:

  • Reactive oxygen species (ROS) are known mitogenic mediators downstream of growth factor receptors.
  • The role of redox mechanisms in negative control of cell proliferation by inhibitory signals remains unexplored.

Purpose of the Study:

  • To investigate the role of redox signaling in contact inhibition of cell proliferation.
  • To elucidate the mechanisms by which cell density regulates intracellular ROS levels and their impact on mitogenic signaling.

Main Methods:

  • Assessed intracellular ROS levels in confluent and sparse fibroblast cultures.
  • Measured the activity of Rac-1, a key ROS-generating GTPase.
  • Utilized dithiothreitol (DTT) and enzyme inhibitors to mimic or block redox signaling.
  • Quantified thymidine incorporation to assess cell proliferation.
  • Analyzed protein tyrosine phosphorylation and SHP-2 phosphatase activity.

Main Results:

  • Contact inhibition is partly mediated by decreased intracellular ROS levels.
  • Reduced ROS impairs mitogenic redox signaling, mimicking effects of DTT and arachidonic acid cascade inhibitors.
  • Decreased ROS in confluent cells correlates with diminished Rac-1 activity.
  • Low hydrogen peroxide addition to confluent cells reversed growth arrest.
  • Reduced ROS in sparse cells mimicked contact inhibition's effect on epidermal growth factor-induced signaling, including SHP-2 dephosphorylation and reduced activity.

Conclusions:

  • Cell density-dependent growth arrest involves decreased ROS generation and impaired mitogenic signaling.
  • SHP-2 phosphatase is a key redox-sensitive target in contact inhibition signaling.
  • These findings establish a redox-related mechanism for negative growth control by cell density.

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