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Modulation of FGF-2 binding to chondrocytes from the developing growth plate by perlecan
Prasanthi Govindraj1, Leigh West, Simone Smith
1Center for Research in Skeletal Development and Pediatric Orthopaedics, Shriners Hospitals for Children, Tampa, FL 33612, USA.
Insights
Perlecan, a component of growth plate cartilage, acts as a low-affinity receptor for fibroblast growth factor-2 (FGF-2). This interaction sequesters FGF-2, potentially regulating chondrocyte proliferation.
Area of Science:
- Cell Biology
- Biochemistry
- Developmental Biology
Background:
- Fibroblast growth factor-2 (FGF-2) regulates chondrocyte proliferation in the growth plate.
- Perlecan, a heparan sulfate proteoglycan, is known to bind FGF-2.
Purpose of the Study:
- To evaluate the effect of growth plate-derived perlecan on FGF-2 binding to its receptors on chondrocytes.
- To characterize perlecan's role as a receptor for FGF-2 in chondrocytes.
Main Methods:
- Isolation of resting and proliferating chondrocytes from fetal bovine ribs.
- Culture of chondrocytes and analysis of secreted matrix components (perlecan).
- Binding assays using radiolabeled FGF-2 and competition studies with exogenous perlecan and FGF-2.
Main Results:
- Medium perlecan, containing a large core protein, bound FGF-2, acting as a low-affinity receptor.
- Cell layer perlecan, with a smaller core protein, did not bind FGF-2.
- Exogenous perlecan reduced FGF-2 binding to both low and high-affinity chondrocyte receptors.
Conclusions:
- Perlecan secreted by growth plate chondrocytes functions as a low-affinity FGF-2 receptor.
- Perlecan sequesters FGF-2, potentially modulating its availability to high-affinity receptors and influencing chondrocyte proliferation.
Abstract:
FGF-2 is a regulator of chondrocyte proliferation in the developing growth plate and has been shown to bind to perlecan, a heparan sulfate proteoglycan. We evaluated the effect of perlecan isolated from the growth plate on the binding of FGF-2 to its low and high affinity receptors on resting and proliferating chondrocytes. Chondrocytes were isolated by pronase/collagenase digestion of 1 mm thick slices from the resting and proliferating zones of fetal bovine ribs and were plated in serum-free DMEM. Chondrocytes maintained their zone-specific level of DNA and matrix synthesis over a two-day culture period. The collagen, aggrecan, and perlecan components of the matrix produced were associated with the cell layer and were secreted into the medium. Most of the perlecan made by the chondrocytes was secreted into the medium. Western blots showed medium perlecan to contain two high molecular weight core proteins and overlay assays showed only the large core protein bound FGF-2. Cell layer perlecan contained only the smaller core protein. Immunoprecipitation assays of media showed that the medium perlecan bound (125)I-FGF-2, that the bound FGF-2 was eluted from perlecan by 2 M NaCl at pH 7.4, and that this binding was eliminated by prior digestion with heparatinase. This indicates that the perlecan secreted into the medium is a low affinity receptor for FGF-2. (125)I-FGF-2 also bound to the chondrocytes in cell culture. Competition studies showed exogenous FGF-2 reduced (125)I-FGF-2 binding to high affinity receptor but not the low affinity receptor in the cell layer. Exogenous perlecan, however, reduced (125)I-FGF-2 binding to both the low and the high affinity receptors in the cell layer by approximately 60%. The results suggest that perlecan made by growth plate chondrocytes is a low affinity receptor for FGF-2 and acts to sequester FGF-2 away from the high affinity receptor.
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