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Updated: Apr 16, 2026

Reprogramming Mouse Embryonic Fibroblasts with Transcription Factors to Induce a Hemogenic Program
Published on: December 16, 2016
Cellular transformation of mouse embryo fibroblasts in the absence of activator E2Fs
Tushar Gupta1, Maria Teresa Sáenz Robles1, James M Pipas2
1Department of Biological Sciences, University of Pittsburgh, Pittsburgh, Pennsylvania, USA.
Unlabelled:
The E2F family of transcription factors, broadly divided into activator and repressor E2Fs, regulates cell cycle genes. Current models indicate that activator E2Fs are necessary for cell cycle progression and tumorigenesis and are also required to mediate transformation induced by DNA tumor viruses. E2Fs are negatively regulated by the retinoblastoma (RB) family of tumor suppressor proteins, and virus-encoded oncogenes disrupt the RB-E2F repressor complexes. This results in the release of activator E2Fs and induction of E2F-dependent genes. In agreement, expression of large tumor T antigens (TAg) encoded by polyomaviruses in mammalian cells results in increased transcriptional levels of E2F target genes. In addition, tumorigenesis induced by transgenic expression of simian virus 40 (SV40) TAg in choroid plexus or intestinal villi requires at least one activator E2F. In contrast, we show that SV40 TAg-induced transformation in mouse embryonic fibroblasts is independent of activator E2Fs. This work, coupled with recent studies showing that proliferation in stem and progenitor cells is independent of activator E2Fs, suggests the presence of parallel pathways governing cell proliferation and tumorigenesis.
Importance:
The RB-E2F pathway is altered in many cancers and is also targeted by DNA tumor viruses. Viral oncoprotein action on RBs results in the release of activator E2Fs and upregulation of E2F target genes; thus, activator E2Fs are considered essential for normal and tumorigenic cell proliferation. However, we have observed that SV40 large T antigen can induce cell proliferation and transformation in the absence of activator E2Fs. Our results also suggest that TAg action on pRBs regulates both E2F-dependent and -independent pathways that govern proliferation. Thus, specific cell proliferation pathways affected by RB alterations in cancer may be a factor in tumor behavior and response to therapy.
Insights
Cell cycle regulation by E2F transcription factors is crucial for cell proliferation and cancer. This study reveals that simian virus 40 large tumor antigen can drive cell transformation independently of activator E2Fs, suggesting parallel proliferation pathways.
Area of Science:
- Molecular Biology
- Cell Biology
- Oncology
Background:
- The retinoblastoma (RB)-E2F pathway controls cell cycle genes and is frequently dysregulated in cancer.
- DNA tumor viruses often target the RB-E2F pathway to promote cell proliferation and transformation.
- Activator E2Fs are generally considered essential for cell cycle progression and tumorigenesis.
Purpose of the Study:
- To investigate the role of activator E2Fs in simian virus 40 (SV40) large tumor antigen (TAg)-induced cell transformation.
- To determine if SV40 TAg-induced proliferation is solely dependent on the E2F pathway.
- To explore potential parallel pathways governing cell proliferation and tumorigenesis.
Main Methods:
- Utilized mouse embryonic fibroblasts (MEFs) for transformation studies.
- Employed SV40 large tumor antigen (TAg) expression.
- Assessed cell proliferation and transformation phenotypes in the absence of functional activator E2Fs.
Main Results:
- SV40 TAg-induced transformation of MEFs occurred independently of activator E2Fs.
- This finding contrasts with previous models where activator E2Fs were deemed essential.
- Suggests that SV40 TAg can activate proliferation through both E2F-dependent and E2F-independent mechanisms.
Conclusions:
- Cell proliferation and tumorigenesis can be driven by pathways independent of activator E2Fs.
- SV40 TAg utilizes parallel pathways to regulate cell proliferation and transformation.
- Understanding these parallel pathways is critical for comprehending tumor behavior and therapeutic responses in RB-altered cancers.

