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Orthovanadate both mimics and antagonizes the transforming growth factor beta action on normal rat kidney cells
G Rijksen1, M C Völler, E J Van Zoelen
1Department of Hematology, University Hospital, Utrecht, The Netherlands.
Abstract:
Normal rat kidney [NRK] cells grown in the presence of epidermal growth factor (EGF) or platelet-derived growth factor (PDGF) have a normal phenotype and undergo density-dependent growth inhibition, whereas in the presence of multiple growth factors, density arrest is lost and the cells become phenotypically transformed. We studied the influence of the protein tyrosine phosphatase (PTPase) inhibitor sodium orthovanadate on the mitogenic stimulation of NRK cells by growth factors and on transformation-linked properties as loss of density-dependent growth inhibition and anchorage-independent growth. The fraction of cells in serum-deprived monolayer cultures that is induced to proliferate upon mitogenic stimulation by EGF or PDGF is only slightly enhanced upon addition of low concentrations (25-50 microM) of vanadate. Addition of vanadate per se induces proliferation of only a very limited amount of cells, but results in a shift of the dose-response curves for other growth factors to lower concentrations. Vanadate added in combination with EGF or PDGF is able to mimic the effect of transforming growth factor beta (TGF beta) in inducing phenotypic transformation. In monolayer cultures density-dependent growth inhibition is lost and anchorage-independent proliferation is observed on dishes coated with poly(2-hydroxy-ethyl methacrylate) (polyHEMA). The extent of these changes is similar to that induced by TGF beta. However, the morphology of the obtained colonies in polyHEMA-coated dishes is quite different. Cells transformed by TGF beta in the presence of EGF form rather amorphous colonies, whereas in the presence of orthovanadate colonies are formed that tend to fall apart in loose cells. The effect of vanadate on cell transformation is dependent on the growth factor conditions in a bimodal way. When a suboptimal dose of growth factor(s) is used, 25 microM vanadate is very effective in preventing density-induced growth inhibition and stimulating anchorage-independent proliferation. However, the same concentration of vanadate is inhibitory when cells are maximally stimulated and antagonizes the transforming effect of TGF beta added in combination with other growth factors. It is hypothesized that vanadate acts on a set of different protein tyrosine phosphatases. Some of these are positive and others negative regulators of growth.
Insights
Sodium orthovanadate, a protein tyrosine phosphatase inhibitor, can induce phenotypic transformation in normal rat kidney cells when combined with growth factors like EGF or PDGF. This transformation involves loss of growth inhibition and anchorage-independent growth, mimicking TGF-beta effects.
Area of Science:
- Cell Biology
- Biochemistry
- Molecular Biology
Background:
- Normal rat kidney (NRK) cells exhibit density-dependent growth inhibition.
- Exposure to multiple growth factors can lead to phenotypic transformation and loss of growth control.
- Protein tyrosine phosphatases (PTPases) play a role in regulating cell growth and proliferation.
Purpose of the Study:
- To investigate the effect of the PTPase inhibitor sodium orthovanadate on NRK cell mitogenesis and transformation.
- To determine if vanadate can induce phenotypic transformation, loss of density-dependent growth inhibition, and anchorage-independent growth.
- To explore the dose-dependent and growth factor-dependent effects of vanadate on cell transformation.
Main Methods:
- NRK cells were treated with growth factors (EGF, PDGF) and varying concentrations of sodium orthovanadate.
- Cell proliferation was assessed in response to mitogenic stimulation.
- Phenotypic transformation was evaluated by loss of density-dependent growth inhibition and anchorage-independent growth assays using polyHEMA-coated dishes.
Main Results:
- Low concentrations of vanadate slightly enhanced mitogenic stimulation by EGF or PDGF.
- Vanadate, in combination with EGF or PDGF, induced phenotypic transformation, including loss of density-dependent growth inhibition and anchorage-independent growth, similar to TGF-beta.
- Vanadate's effect on transformation was bimodal, being effective at suboptimal growth factor doses but inhibitory at maximal stimulation, even antagonizing TGF-beta.
- Colony morphology differed between TGF-beta and vanadate-induced transformation.
Conclusions:
- Sodium orthovanadate can act as a potent inducer of phenotypic transformation in NRK cells under specific growth factor conditions.
- Vanadate's effects suggest it modulates multiple PTPases, some acting as positive and others as negative regulators of cell growth.
- The findings highlight the complex role of PTPases in controlling cell proliferation and transformation.