MyoD gene suppression by Oct4 is required for reprogramming in myoblasts to produce induced pluripotent stem cells
Shuichi Watanabe1, Hiroyuki Hirai, Yoko Asakura
1Stem Cell Institute, University of Minnesota Medical School, Minneapolis, Minnesota 55455, USA.
Abstract:
Expression of the four transcription factors, that is, Oct4, Sox2, cMyc, and Klf4 has been shown to generate induced pluripotent stem cells (iPSCs) from many types of specialized differentiated somatic cells. It remains unclear, however, whether fully committed skeletal muscle progenitor cells (myoblasts) have the potency to undergo reprogramming to develop iPSCs in line with previously reported cases. To test this, we have isolated genetically marked myoblasts derived from satellite cell of adult mouse muscles using the Cre-loxP system (Pax7-CreER:R26R and Myf5-Cre:R26R). On infection with retroviral vectors expressing the four factors, these myoblasts gave rise to myogenic lineage tracer lacZ-positive embryonic stem cell (ESC)-like colonies. These cells expressed ESC-specific genes and were competent to differentiate into all three germ layers and germ cells, indicating the successful generation of myoblast-derived iPSCs. Continuous expression of the MyoD gene, a master transcription factor for skeletal muscle specification, inhibited this reprogramming process in myoblasts. In contrast, reprogramming myoblasts isolated from mice lacking the MyoD gene led to an increase in reprogramming efficiency. Our data also indicated that Oct4 acts as a transcriptional suppressor of MyoD gene expression through its interaction with the upstream enhancer region. Taken together, these results indicate that suppression of MyoD gene expression by Oct4 is required for the initial reprogramming step in the development of iPSCs from myoblasts. This data suggests that the skeletal muscle system provides a well-defined differentiation model to further elaborate on the effects of iPSC reprogramming in somatic cells.
Insights
Skeletal muscle progenitor cells (myoblasts) can be reprogrammed into induced pluripotent stem cells (iPSCs) by four transcription factors. Oct4
Area of Science:
- Stem Cell Biology
- Somatic Cell Reprogramming
- Muscle Development
Background:
- Induced pluripotent stem cells (iPSCs) are generated from somatic cells using specific transcription factors.
- The potential of terminally differentiated myoblasts to form iPSCs remains largely unexplored.
Purpose of the Study:
- To investigate the reprogramming capacity of mouse skeletal muscle progenitor cells (myoblasts) into iPSCs.
- To elucidate the role of MyoD and Oct4 in myoblast reprogramming.
Main Methods:
- Isolation of genetically marked mouse myoblasts using Cre-loxP systems.
- Retroviral transduction with Oct4, Sox2, cMyc, and Klf4.
- Analysis of ESC-specific gene expression and differentiation potential.
- Investigation of MyoD and Oct4 interactions using gene-deficient mice.
Main Results:
- Myoblasts successfully reprogrammed into iPSCs expressing ESC markers and differentiating into three germ layers.
- Continuous MyoD expression inhibited reprogramming, while MyoD deficiency enhanced it.
- Oct4 was identified as a transcriptional suppressor of MyoD, crucial for initial reprogramming.
Conclusions:
- Skeletal muscle progenitor cells are capable of reprogramming into iPSCs.
- Suppression of MyoD by Oct4 is essential for initiating iPSC generation from myoblasts.
- The skeletal muscle system offers a valuable model for studying iPSC reprogramming dynamics.
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