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Updated: Jul 14, 2026

Preparation of Mouse Embryonic Fibroblast Cells Suitable for Culturing Human Embryonic and Induced Pluripotent Stem Cells
Published on: June 21, 2012
Osteogenic differentiation of murine embryonic stem cells is mediated by fibroblast growth factor receptors
Kee Woei Ng1, Tobias Speicher, Christian Dombrowski
1Stem Cell and Tissue Repair Laboratory, Institute of Molecular and Cell Biology, Proteos, Singapore 138673.
Abstract:
The mechanisms involved in the control of embryonic stem (ES) cell differentiation are yet to be fully elucidated. However, it has become clear that the family of fibroblast growth factors (FGFs) are centrally involved. In this study we examined the role of the FGF receptors (FGFRs 1-4) during osteogenesis in murine ES cells. Single cells were obtained after the formation of embryoid bodies, cultured on gelatin-coated plates, and coaxed to differentiate along the osteogenic lineage. Upregulation of genes was analyzed at both the transcript and protein levels using gene array, relative-quantitative PCR (RQ-PCR), and Western blotting. Deposition of a mineralized matrix was evaluated with Alizarin Red staining. An FGFR1-specific antibody was generated and used to block FGFR1 activity in mES cells during osteogenic differentiation. Upon induction of osteogenic differentiation in mES cells, all four FGFRs were clearly upregulated at both the transcript and protein levels with a number of genes known to be involved in osteogenic differentiation including bone morphogenetic proteins (BMPs), collagen I, and Runx2. Cells were also capable of depositing a mineralized matrix, confirming the commitment of these cells to the osteogenic lineage. When FGFR1 activity was blocked, a reduction in cell proliferation and a coincident upregulation of Runx2 with enhanced mineralization of cultures was observed. These results indicate that FGFRs play critical roles in cell recruitment and differentiation during the process of osteogenesis in mES cells. In particular, the data indicate that FGFR1 plays a pivotal role in osteoblast lineage determination.
Insights
Fibroblast growth factor receptors (FGFRs) are crucial for embryonic stem cell differentiation into bone cells. Blocking FGFR1 enhances osteogenesis, suggesting its pivotal role in osteoblast determination.
Area of Science:
- Stem cell biology
- Developmental biology
- Molecular biology
Background:
- Embryonic stem (ES) cell differentiation mechanisms are not fully understood.
- Fibroblast growth factors (FGFs) are known to be involved in cell differentiation.
- The specific roles of FGF receptors (FGFRs) in osteogenesis require further investigation.
Purpose of the Study:
- To investigate the role of FGFRs 1-4 in murine ES cell osteogenesis.
- To analyze gene and protein expression during osteogenic differentiation.
- To determine the impact of FGFR1 inhibition on osteogenesis.
Main Methods:
- Murine ES cells were differentiated into osteoblasts.
- Gene and protein expression were analyzed using gene array, RQ-PCR, and Western blotting.
- Mineralized matrix deposition was assessed via Alizarin Red staining.
- FGFR1 activity was blocked using a specific antibody.
Main Results:
- All four FGFRs were upregulated at transcript and protein levels during osteogenic differentiation.
- Key osteogenic genes (BMPs, collagen I, Runx2) were upregulated.
- Blocking FGFR1 reduced cell proliferation but enhanced Runx2 expression and matrix mineralization.
- ES cells successfully differentiated and deposited a mineralized matrix.
Conclusions:
- FGFRs are critical for cell recruitment and differentiation during ES cell osteogenesis.
- FGFR1 plays a pivotal role in osteoblast lineage determination.
- Targeting FGFR1 may offer therapeutic potential for bone regeneration.

