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Analysis of Cell Migration within a Three-dimensional Collagen Matrix
Published on: October 5, 2014
Platelet-derived growth factor receptor beta regulates migration and DNA synthesis in metanephric mesenchymal cells
1Department of Pediatrics, South Texas Department of Veterans Affairs Health Care System, San Antonio, Texas 78229-3900, USA. arar@uthscsa.edu
Abstract:
Platelet-derived growth factor (PDGF) B-chain and PDGF receptor beta (PDGFR beta) are essential for glomerulogenesis. Mice deficient in PDGF B-chain or PDGFR beta exhibit an abnormal glomerular phenotype characterized by total lack of mesangial cells. In this study, we localized PDGFR beta in the developing rat kidney and explored the biological effects of PDGF in metanephric mesenchymal cells in an attempt to determine the mechanism by which PDGF regulates mesangial cell development. Immunohistochemical and in situ hybridization studies of rat embryonic kidneys reveal that PDGFR beta localizes to undifferentiated metanephric mesenchyme and is later expressed in the cleft of the comma-shaped and S-shaped bodies and in more mature glomeruli in a mesangial distribution. We also isolated and characterized cells from rat metanephric mesenchyme. Metanephric mesenchymal cells express vimentin and alpha-smooth muscle actin but not cytokeratin. These cells also express functional PDGFR beta, as demonstrated by autophosphorylation of the receptor as well as activation of phosphatidylinositol 3 kinase in response to PDGF B-chain homodimer. PDGF B-chain also induces migration and proliferation of metanephric mesenchymal cells. Taken together with the fact that PDGF B-chain is expressed in the glomerular epithelium and mesangial area, as demonstrated in the human embryonic kidney, we suggest that PDGF B-chain acts in a paracrine fashion to stimulate the migration and proliferation of mesangial cell precursors from undifferentiated metanephric mesenchyme to the mesangial area. PDGF B-chain also likely stimulates proliferation of mesangial cell precursors in an autocrine fashion once these cells migrate to the glomerular tuft.
Insights
Platelet-derived growth factor (PDGF) B-chain is crucial for kidney development, stimulating mesangial cell precursors to migrate and proliferate. This process is essential for forming functional glomeruli in developing kidneys.
Area of Science:
- Developmental biology
- Renal physiology
- Cell signaling
Background:
- Platelet-derived growth factor (PDGF) B-chain and its receptor, PDGFR beta, are vital for glomerulogenesis.
- Genetic deficiencies in PDGF B-chain or PDGFR beta lead to abnormal glomeruli lacking mesangial cells.
Purpose of the Study:
- To investigate the localization of PDGFR beta in developing rat kidneys.
- To explore the biological effects of PDGF on metanephric mesenchymal cells.
- To elucidate the mechanism of PDGF in regulating mesangial cell development.
Main Methods:
- Immunohistochemistry and in situ hybridization to localize PDGFR beta in embryonic rat kidneys.
- Isolation and characterization of rat metanephric mesenchymal cells.
- Assessment of PDGFR beta functionality via autophosphorylation and phosphatidylinositol 3 kinase activation assays in response to PDGF B-chain.
Main Results:
- PDGFR beta is found in undifferentiated metanephric mesenchyme and later in developing glomeruli.
- Rat metanephric mesenchymal cells express vimentin, alpha-smooth muscle actin, and functional PDGFR beta.
- PDGF B-chain stimulates the migration and proliferation of these mesenchymal cells.
Conclusions:
- PDGF B-chain likely acts in a paracrine manner, stimulating mesangial cell precursor migration from the mesenchyme.
- PDGF B-chain may also act in an autocrine fashion to promote proliferation of these cells within the glomerulus.
- These findings highlight PDGF's critical role in mesangial cell development and glomerulogenesis.
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