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Updated: Jun 23, 2026

Oct4GiP Reporter Assay to Study Genes that Regulate Mouse Embryonic Stem Cell Maintenance and Self-renewal
Published on: May 30, 2012
Simultaneous overexpression of Oct4 and Nanog abrogates terminal myogenesis
Kuan Chih Lang1, I Hsuan Lin, Han Fang Teng
1Dept. of Life Sciences, National Central University, 300 Jhongda Rd., Jhongli 32054, Taiwan, ROC.
Abstract:
Oct4 and Nanog are two embryonic stem (ES) cell-specific transcription factors that play critical roles in the maintenance of ES cell pluripotency. In this study, we investigated the effects of Oct4 and Nanog expression on the differentiation state of myogenic cells, which is sustained by a strong positive feedback loop. Oct4 and Nanog, either independently or simultaneously, were overexpressed in C2C12 myoblasts, and the expression of myogenic lineage-specific genes and terminal differentiation was observed by RT-PCR. Overexpression of Oct4 in C2C12 cultures repressed, while exogenous Nanog did not significantly alter C2C12 terminal differentiation. The expression of Pax7 was reduced in all Oct4-overexpressing myoblasts, and we identified a major Oct4-binding site in the Pax7 promoter. Simultaneous expression of Oct4 and Nanog in myoblasts inhibited the formation of myotubes, concomitant with a reduction in the endogenous levels of hallmark myogenic markers. Furthermore, overexpression of Oct4 and Nanog induced the expression of their endogenous counterparts along with the expression of Sox2. Using mammalian two-hybrid assays, we confirmed that Oct4 functions as a transcriptional repressor whereas Nanog functions as a transcriptional activator during muscle terminal differentiation. Importantly, in nonobese diabetic (NOD) severe combined immunodeficiency (SCID) mice, the pluripotency of C2C12 cells was conferred by overexpression of Oct4 and Nanog. These results suggest that Oct4 in cooperation with Nanog strongly suppresses the myogenic differentiation program and promotes pluripotency in myoblasts.
Insights
Oct4 and Nanog transcription factors suppress muscle cell differentiation and promote pluripotency in myoblasts. Overexpression of these factors in C2C12 cells inhibited myotube formation and induced stem cell characteristics.
Area of Science:
- Stem cell biology
- Muscle development
- Transcription factors
Background:
- Embryonic stem (ES) cell pluripotency is maintained by Oct4 and Nanog.
- Myogenic differentiation involves a positive feedback loop.
- Understanding transcription factor roles in differentiation is crucial.
Purpose of the Study:
- Investigate Oct4 and Nanog effects on myogenic cell differentiation.
- Determine the mechanism of Oct4 and Nanog in C2C12 myoblasts.
- Assess the potential for inducing pluripotency in myoblasts.
Main Methods:
- Overexpression of Oct4 and Nanog in C2C12 myoblasts.
- RT-PCR analysis of myogenic gene expression and differentiation.
- Mammalian two-hybrid assays to determine transcriptional activity.
- In vivo studies using NOD/SCID mice.
Main Results:
- Oct4 overexpression repressed C2C12 terminal differentiation and reduced Pax7 expression.
- Nanog overexpression alone did not significantly alter differentiation.
- Simultaneous Oct4 and Nanog overexpression inhibited myotube formation and myogenic markers.
- Oct4 acted as a repressor, Nanog as an activator in muscle differentiation.
- Overexpression of Oct4 and Nanog conferred pluripotency to C2C12 cells in vivo.
Conclusions:
- Oct4 and Nanog cooperate to suppress the myogenic differentiation program.
- These factors promote pluripotency in myoblasts.
- Oct4 and Nanog are key regulators of cell fate plasticity.
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