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Published on: July 15, 2016
mTOR Plays an Important Role in the Stemness of Human Fetal Cartilage Progenitor Cells (hFCPCs)
Him-Cha Shin1, Jiyoung Kim2, So Ra Park1
1Department of Physiology and Biophysics, Inha University College of Medicine, 100 Inha-ro, Michuhol-gu, Incheon, 22212, South Korea.
Background:
Mammalian target of rapamycin (mTOR) is known to regulate self-renewal ability and potency of embryonic stem cells (ESCs) and adult stem cells in opposite manners. However, its effects vary even among adult stem cells and are not reported in fetal stem/progenitor cells. This study investigated the role of mTOR in the function of human fetal cartilage-derived progenitor cells (hFCPCs).
Methods:
mTOR activity in hFCPCs was first examined via the level of phosphor-mTOR until passage 19, together with doubling time of cells and senescence-associated b-galactosidase (SA-bGal). Then, the effect of 100 nM rapamycin, the inhibitor of mTOR, was investigated on self-renewal ability, proliferation rate and osteogenic/adipogenic potential of hFCPCs in vitro. Expression of stemness genes (Oct-4, Sox2 and Nanog) and cell cycle regulators (CDK4 and Cyclin D1) was measured at mRNA or protein levels.
Results:
mTOR activity was maintained constantly at high levels in hFCPCs until passage 19, while their proliferation rate was decreasing from 48 h at passage 13 to 70 h at passage 9 and senescent cells were observed at passage 18 (8.3 ± 1.2%) and 19 (15.6 ± 1.9%). Inhibition of mTOR in hFCPCs impaired their colony forming frequency (CFU-F) by 4 folds, while showing no change in their doubling time and expression of CDK4 and Cyclin D1. Upon mTOR inhibition, Oct4 expression decreased by 2 folds and 4 folds at the mRNA and protein levels, respectively, while that of Sox2 and Nanog did not change significantly. Finally, mTOR inhibition reduced osteogenic and adipogenic differentiation of hFCPCs in vitro.
Conclusion:
This study has shown that mTOR plays an important role in the self-renewal ability of hFCPCS but not in their proliferation, The effect of mTOR appears to be associated with Oct-4 expression and important in the osteogenic and adipogenic differentiation ability of hFCPCs.
Insights
Mammalian target of rapamycin (mTOR) regulates self-renewal in human fetal cartilage-derived progenitor cells (hFCPCs) but not proliferation. mTOR inhibition impacts Oct-4 expression and impairs osteogenic and adipogenic differentiation potential.
Area of Science:
- Stem cell biology
- Cell signaling pathways
- Regenerative medicine
Background:
- Mammalian target of rapamycin (mTOR) differentially regulates stem cell self-renewal and potency.
- Its specific role in fetal stem/progenitor cells, like human fetal cartilage-derived progenitor cells (hFCPCs), remains largely uncharacterized.
- This study addresses the function of mTOR in hFCPCs.
Purpose of the Study:
- To investigate the role of mTOR in the self-renewal, proliferation, and differentiation of hFCPCs.
- To examine the impact of mTOR inhibition on key stemness markers and cell cycle regulators.
- To understand mTOR's influence on osteogenic and adipogenic potential in hFCPCs.
Main Methods:
- Assessed mTOR activity, cell proliferation, and senescence in hFCPCs across passages.
- Utilized rapamycin to inhibit mTOR and evaluated its effects on colony formation (CFU-F).
- Quantified mRNA and protein levels of stemness genes (Oct-4, Sox2, Nanog) and cell cycle regulators (CDK4, Cyclin D1).
Main Results:
- High mTOR activity was observed in hFCPCs until passage 19, with declining proliferation and increasing senescence.
- mTOR inhibition significantly reduced CFU-F by 4-fold, decreased Oct-4 expression (2-fold mRNA, 4-fold protein), but did not affect proliferation or CDK4/Cyclin D1 levels.
- Osteogenic and adipogenic differentiation potentials of hFCPCs were diminished following mTOR inhibition.
Conclusions:
- mTOR is crucial for maintaining the self-renewal capacity of hFCPCs, independent of their proliferation rate.
- The observed effects of mTOR inhibition are linked to altered Oct-4 expression.
- mTOR plays a significant role in the osteogenic and adipogenic differentiation of hFCPCs.
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