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Updated: May 27, 2026

Isolation and Enrichment of Human Adipose-derived Stromal Cells for Enhanced Osteogenesis
Published on: January 12, 2015
Phosphoproteomic analysis of human mesenchymal stromal cells during osteogenic differentiation
Ting Lo1, Chia-Feng Tsai, Yu-Ru V Shih
1Department of Medical Research and Education and ‡Department of Orthopaedics and Traumatology, Taipei Veterans General Hospital, Taipei, Taiwan.
Abstract:
Human mesenchymal stromal cells (hMSCs) are promising candidates for cell therapy and tissue regeneration. Knowledge of the molecular mechanisms governing hMSC commitment into osteoblasts is critical to the development of therapeutic applications for human bone diseases. Because protein phosphorylation plays a critical role in signaling transduction network, the purpose of this study is to elucidate the phosphoproteomic changes in hMSCs during early osteogenic lineage commitment. hMSCs cultured in osteogenic induction medium for 0, 1, 3, and 7 days were analyzed by liquid chromatography tandem mass spectrometry (LC-MS/MS). Surprisingly, we observed a dramatic loss of protein phosphorylation level after 1 day of osteogenic induction. Pathways analysis of these reduced phosphoproteins exhibited a high correlation with cell proliferation and protein synthesis pathways. During osteogenic differentiation, differentially expressed phosphoproteins demonstrated the dynamic alterations in cytoskeleton at the early stages of differentiation. The fidelity of our quantitative phosphoproteomic analyses were further confirmed by Western blot analyses, and the changes from protein expression or its phosphorylation level were distinguished. In addition, several ion channels and transcription factors with differentially expressed phosphorylation sites during osteogenic differentiation were identified and may serve as potentially unexplored transcriptional regulators of the osteogenic phenotype of hMSCs. Taken together, our results have demonstrated the dynamic changes in phosphoproteomic profiles of hMSCs during osteogenic differentiation and unraveled potential candidates mediating the osteogenic commitment of hMSCs. The findings in this study may also shed light on the development of new therapeutic targets for metabolic bone diseases such as osteoporosis and osteomalacia.
Insights
This study reveals dynamic phosphoproteomic changes during human mesenchymal stromal cell (hMSC) osteogenic differentiation. Key alterations in cell signaling pathways and cytoskeletal proteins were identified, offering new therapeutic targets for bone diseases.
Area of Science:
- Cell Biology
- Proteomics
- Biochemistry
Background:
- Human mesenchymal stromal cells (hMSCs) are vital for cell therapy and tissue regeneration.
- Understanding hMSC osteogenic commitment is crucial for treating bone diseases.
- Protein phosphorylation is a key regulator of cellular signaling.
Purpose of the Study:
- To investigate phosphoproteomic alterations in hMSCs during early osteogenic lineage commitment.
- To identify molecular mechanisms underlying hMSC differentiation into osteoblasts.
- To uncover potential therapeutic targets for bone disorders.
Main Methods:
- Quantitative phosphoproteomics using liquid chromatography tandem mass spectrometry (LC-MS/MS).
- Analysis of hMSCs at key time points (0, 1, 3, and 7 days) of osteogenic induction.
- Validation of findings using Western blot analyses.
Main Results:
- A significant decrease in protein phosphorylation was observed after 1 day of osteogenic induction.
- Pathway analysis linked reduced phosphoproteins to cell proliferation and protein synthesis.
- Dynamic changes in cytoskeleton-associated phosphoproteins were evident during early differentiation.
- Several novel ion channels and transcription factors with altered phosphorylation were identified.
Conclusions:
- The study elucidates dynamic phosphoproteomic shifts during hMSC osteogenic differentiation.
- Identified phosphoproteins and pathways offer insights into osteogenic commitment mechanisms.
- Findings may guide the development of therapeutic strategies for metabolic bone diseases like osteoporosis.
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