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Cell-specificity of transforming growth factor-beta response is dictated by receptor bioavailability
Magdalena I Suszko1, Teresa K Woodruff
1Department of Neurobiology and Physiology, Northwestern University, 2205 Tech Drive, Evanston, Illinois 60208, USA.
Abstract:
Members of the transforming growth factor-beta (TGFbeta) family control diverse cellular responses including differentiation, proliferation, controlled cell death and migration. The response of a cell to an individual ligand is highly restricted yet the signaling pathways for TGFbeta, activin and bone morphogenic proteins share a limited number of receptors and activate similar intracellular cytoplasmic co-regulators, Smads. A central question in the study of this family of ligands is how cells titrate and integrate each TGFbeta-like signal in order to respond in a cell- and ligand-specific manner. This study uses the pituitary gonadotrope cell line, LbetaT2, as a model to delineate the relative contribution of TGFbeta and activin ligands to follicle-stimulating hormone (FSH) biosynthesis. It was found that pituitary gonadotrope cells do not express the TGFbeta type II (TbetaRII) receptor and are therefore not responsive to the TGFbeta ligand. Transfection of the receptor restores TGFbeta signaling capabilities and the TGFbeta-mediated stimulation of FSHbeta gene transcription in LbetaT2 cells. Consequently, we evaluated the presence of the TbetaRII in the adult mouse pituitary. TbetaRII does not co-localize with FSH-producing cells; however it is detected on the cell surface of prolactin- and growth hormone-positive cells. Taken together, these results suggest that the bioavailability of the TGFbeta-specific receptor rather than TGFbeta dictates pituitary gonadotrope selectivity to activin, which is necessary to maintain normal reproductive function. It is likely that the ligand-restricted mechanisms employed by the gonadotrope are present in other cells, which could explain the distinct control of many cellular processes by members of the TGFbeta superfamily.
Insights
Pituitary gonadotrope cells lack the TGFbeta type II receptor, making them unresponsive to TGFbeta. Activin signaling, not TGFbeta, regulates follicle-stimulating hormone (FSH) biosynthesis in these cells.
Area of Science:
- Endocrinology
- Cell Signaling
- Molecular Biology
Background:
- Transforming growth factor-beta (TGFbeta) superfamily ligands regulate critical cellular functions.
- TGFbeta, activin, and bone morphogenic proteins utilize shared receptors and Smad co-regulators.
- Understanding ligand-specific cellular responses is crucial for deciphering TGFbeta superfamily signaling.
Purpose of the Study:
- To investigate the roles of TGFbeta and activin in follicle-stimulating hormone (FSH) biosynthesis using pituitary gonadotrope cells (LbetaT2) as a model.
- To determine the expression and localization of the TGFbeta type II receptor (TbetaRII) in the adult mouse pituitary gland.
Main Methods:
- Utilized the LbetaT2 pituitary gonadotrope cell line for in vitro studies.
- Performed receptor transfection to assess TGFbeta signaling restoration.
- Examined TbetaRII expression in adult mouse pituitary tissue via immunohistochemistry.
Main Results:
- LbetaT2 cells lack endogenous TbetaRII expression and are unresponsive to TGFbeta.
- Transfection of TbetaRII restored TGFbeta signaling and FSHbeta gene transcription in LbetaT2 cells.
- TbetaRII was not found in FSH-producing cells but was present on prolactin- and growth hormone-positive cells in the mouse pituitary.
Conclusions:
- TGFbeta receptor availability, not TGFbeta ligand presence, dictates pituitary gonadotrope responsiveness to activin.
- Activin signaling is essential for maintaining normal reproductive function via FSH regulation.
- Ligand-restricted signaling mechanisms in gonadotropes may be conserved in other cell types for diverse cellular process control.
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