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Chondrogenic Differentiation Induction of Adipose-derived Stem Cells by Centrifugal Gravity
Published on: February 24, 2017
Human osteogenic protein-1 induces chondroblastic, osteoblastic, and/or adipocytic differentiation of clonal murine
I Asahina1, T K Sampath, P V Hauschka
1Children's Hospital Medical Center, Boston, Massachusetts 02115, USA.
Abstract:
Osteogenic protein-1 (OP-1, BMP-7), a bone morphogenetic protein in the transforming growth factor-beta superfamily, induces endochondral bone formation in vivo, but the mechanism of action of OP-1 in osteogenesis is not yet established. Three murine clonal cell lines in different stages of differentiation exhibit graded responses to recombinant human OP-1: the mouse embryonal carcinoma ATDC5 cell, with potential for chondroblastic differentiation; the osteoblast-like MC3T3-E1 cell derived from mouse calvaria; and the multipotent fibroblastic C3H10T1/2 cell derived from mouse embryo connective tissue. We show that OP-1 acts on early stage mesenchymal progenitor cells (ATDC5, C3H10T1/2) to induce chondroblastic differentiation, while OP-1 strongly enhances the osteoblastic phenotype of committed osteoblasts (MC3T3-E1), possibly explaining its induction of the endochondral ossification cascade in vivo. Markers of osteoblastic, chondroblastic, and adipocytic differentiation are compared. OP-1 is strongly mitogenic for ATDC5, showing dose-dependent (2.5-80 ng/ml) induction of Alcian blue staining, alkaline phosphatase activity, and mRNA expression for collagen types II and IX, and matrix Gla protein. MC3T3-E1 cells do not proliferate or stain with Alcian blue in response to OP-1, but express elevated levels of alkaline phosphatase and osteocalcin. While low-dose OP-1 treatment of C3H10T1/2 induces only adipocyte-like cells filled with lipid droplets, a high dose (500 ng/ml) causes the same cells to also exhibit chondrocytic properties. Thus, OP-1 can induce differentiation along elements of the endochondral ossification pathway according to the stage and potential of the target cell.
Insights
Osteogenic protein-1 (OP-1, BMP-7) promotes bone formation by inducing chondroblastic differentiation in progenitor cells and enhancing osteoblastic phenotypes in committed osteoblasts. Its effects vary with cell type and differentiation stage.
Area of Science:
- Cell Biology
- Biochemistry
- Developmental Biology
Background:
- Osteogenic protein-1 (OP-1), also known as BMP-7, is a bone morphogenetic protein.
- OP-1 belongs to the transforming growth factor-beta superfamily.
- The precise mechanism of OP-1 in osteogenesis is not fully understood.
Purpose of the Study:
- To investigate the mechanism of action of OP-1 in osteogenesis.
- To determine how OP-1 influences differentiation in cells at various developmental stages.
- To compare OP-1's effects on osteoblastic, chondroblastic, and adipocytic differentiation markers.
Main Methods:
- Utilized three murine clonal cell lines: ATDC5 (embryonal carcinoma), MC3T3-E1 (osteoblast-like), and C3H10T1/2 (fibroblastic).
- Administered recombinant human OP-1 to cell cultures.
- Assessed cell differentiation through Alcian blue staining, alkaline phosphatase activity, and mRNA expression analysis for specific collagen types and matrix Gla protein.
Main Results:
- OP-1 induced chondroblastic differentiation in early mesenchymal progenitor cells (ATDC5, C3H10T1/2).
- OP-1 enhanced the osteoblastic phenotype in committed osteoblasts (MC3T3-E1), increasing alkaline phosphatase and osteocalcin levels.
- Dose-dependent effects were observed: low OP-1 doses promoted adipogenesis in C3H10T1/2 cells, while high doses induced chondrocytic properties.
Conclusions:
- OP-1's mechanism of action in osteogenesis involves inducing chondroblastic differentiation in progenitor cells and promoting osteoblastic differentiation in committed cells.
- The cellular response to OP-1 is dependent on the cell's differentiation stage and potential.
- OP-1 plays a role in the endochondral ossification pathway by influencing cell differentiation accordingly.

