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TGF-beta autocrine loop regulates cell growth and myogenic differentiation in human rhabdomyosarcoma cells
M Bouché1, R Canipari, R Melchionna
1Department of Histology and Medical Embryology, University of Rome 'La Sapienza', 00161, Rome, Italy. bouche@uniroma1.it
Abstract:
Transforming growth factor beta (TGF) is a well-known inhibitor of myogenic differentiation as well as an autocrine product of rhabdomyosarcoma cells. We studied the role of the TGF-beta autocrine loop in regulating growth and myogenic differentiation in the human rhabdomyosarcoma cell line, RD. We previously reported that the phorbol ester 12-O-tetradecanoylphorbol-13-acetate (TPA) induces growth arrest and myogenic differentiation in these cells, which constitutively express muscle regulatory factors. We show that TPA inhibits the activation of secreted latent TGF-beta, thus decreasing the concentration of active TGF-beta to which the cells are exposed. This event is mediated by the TPA-induced alteration of the uPA/PAI serine-protease system. Complete removal of TGF-beta, mediated by the ectopic expression of a soluble type II TGF-beta receptor dominant negative cDNA, induces growth arrest, but does not trigger differentiation. In contrast, a reduction in the TGF-beta concentration, to a range of 0.14-0.20 x 10(-2) ng/ml (which is similar to that measured in TPA-treated cells), mimics TPA-induced differentiation. Taken together, these data demonstrate that cell growth and suppression of differentiation in rhabdomyosarcoma cells require overproduction of active TGF-beta; furthermore, they show that a 'critical' concentration of TGF-beta is necessary for myogenic differentiation to occur, whereas myogenesis is abolished below and above this concentration. By impairing the TGF-beta autocrine loop, TPA stabilizes the factor concentration within the range compatible for differentiation to occur. In contrast, in human primary muscle cells a much higher concentration of exogenous TGF-beta is required for the differentiation inhibitory effect and TPA inhibits differentiation in these cells probably through a TGF-beta independent mechanism. These data thus clarify the mechanism underlying the multiple roles of TGF-beta in the regulation of both the transformed and differentiated phenotype.
Insights
Transforming growth factor beta (TGF) regulates rhabdomyosarcoma cell growth and differentiation. A specific TGF-beta concentration is crucial for myogenic differentiation, with its autocrine loop playing a key role.
Area of Science:
- Cell Biology
- Molecular Biology
- Cancer Research
Background:
- Transforming growth factor beta (TGF-beta) is a known inhibitor of myogenic differentiation and is produced by rhabdomyosarcoma cells.
- Rhabdomyosarcoma cells constitutively express muscle regulatory factors, but their differentiation is typically suppressed.
Purpose of the Study:
- To investigate the role of the TGF-beta autocrine loop in regulating growth and myogenic differentiation in the human rhabdomyosarcoma cell line, RD.
- To elucidate the mechanism by which phorbol ester (TPA) induces growth arrest and differentiation in these cells.
Main Methods:
- Studied the effect of TPA on TGF-beta activation and concentration in RD cells.
- Utilized ectopic expression of a soluble type II TGF-beta receptor dominant negative cDNA to remove TGF-beta.
- Quantified TGF-beta concentrations to identify critical levels for differentiation.
Main Results:
- TPA inhibits TGF-beta activation by altering the uPA/PAI serine-protease system, reducing active TGF-beta levels.
- Complete TGF-beta removal induces growth arrest but not differentiation.
- A specific reduction in TGF-beta concentration mimics TPA-induced differentiation, indicating a critical range for myogenesis.
Conclusions:
- Rhabdomyosarcoma cell growth and suppressed differentiation depend on excessive active TGF-beta production.
- A critical concentration of TGF-beta is essential for myogenic differentiation; levels above or below this range inhibit myogenesis.
- TPA promotes differentiation by modulating the TGF-beta autocrine loop to maintain a differentiation-compatible TGF-beta concentration.