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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.
Abstract:
Reactive oxygen species (ROS) have recently drawn significant attention as putative mitogenic mediators downstream of activated growth factor receptors and oncogenic Ras; however, the possibility that a redox-related mechanism also operates in the negative control of cell proliferation by inhibitory signals has not been investigated thus far. Here we show that the arrest of growth induced by cell confluence ("contact inhibition") is due, at least in part, to a decrease in the steady-state levels of intracellular ROS and the consequent impairment of mitogenic redox signaling. In confluent fibroblast cultures, the decrease in the concentration of oxygen species was associated with diminished activity of the small GTPase Rac-1, a signal transducer directly involved in the ligand-dependent generation of oxygen-derived molecules, and was effectively mimicked by exposure of sparse cultures to dithiothreitol (DTT) and inhibitors of enzymes (phospholipase A2 and lipoxygenase) acting in the arachidonic acid cascade downstream of growth factor receptors and Rac-1. Sparse fibroblasts treated with nontoxic amounts of DTT underwent growth arrest, whereas a low concentration of hydrogen peroxide significantly increased thymidine incorporation in confluent cultures, demonstrating a causal link between redox changes and growth control by cell density. Removal of oxygen species from sparse cultures was accompanied by a drastic decrease of protein tyrosine phosphorylation after epidermal growth factor stimulation, which, at a biochemical level, reproduced the signaling hallmarks of contact inhibition. Moreover, the cytosolic tyrosine phosphatase SHP-2 was identified as a putative target for redox signaling by cell density because the enzyme itself and the associated substrates appear markedly dephosphorylated in both confluent and reductant-treated cells after exposure to epidermal growth factor, and SHP-2 enzymatic activity is strongly activated by DTT in vitro. Taken together, these data support a model in which impaired generation of ROS and increased protein tyrosine phosphatase activity impede mitogenic signaling in contact-inhibited cells.
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.