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Updated: Jul 6, 2026

Analysis of Cell Cycle Position in Mammalian Cells
Published on: January 21, 2012
Adenovirus E1A oncoprotein liberates c-Myc activity to promote cell proliferation through abating Bin1 expression via
Erica L Kinney1, Satoshi Tanida, Amelie A Rodrigue
1Division of Cancer Biology, Department of Pathology, School of Medicine and Stanley S. Scott Cancer Center, Louisiana State University Health Sciences Center, New Orleans, Louisiana 70112, USA.
Abstract:
Adenovirus E1A oncogene transforms primary rodent fibroblasts in cooperation with activated Ras. Conversely, the c-Myc oncoprotein-binding tumor suppressor, Bin1, inhibits Ras/E1A-mediated cell transformation. Since E1A does not directly bind to and inhibit Bin1, the primary mechanism by which E1A counteracts Bin1 to liberate oncogenic c-Myc activity is poorly understood. Here we show that wild-type E1A, but not an Rb binding-defective E1A mutant, suppresses endogenous Bin1 expression in cultured rodent fibroblasts. Similarly, other anti-Rb agents, such as human papillomavirus E7, mitogenic stimuli, and small interfering RNA (siRNA) for Rb, consistently decrease Bin1 promoter activity. In contrast, serum starvation, which activates Rb, enhances endogenous Bin1 levels. These findings suggest that Bin1 may be a novel component of Rb-mediated G1 arrest. Consistent with this premise, chromatin immunoprecipitation assays demonstrate that Rb protein directly interacts with the Bin1 promoter only upon removal of serum. Furthermore, ectopically expressed E2F1, which is primarily inhibited by Rb under serum-starved condition, represses Bin1 promoter activity in a manner that is dependent on the DNA-binding and transactivation domains of E2F1. Lastly, depletion of endogenous Bin1 per se is biologically meaningful since antisense or siRNA of Bin1 transfection releases endogenous c-Myc transcriptional activity and, concomitantly, accelerates cell proliferation. Our results suggest that Bin1 gene suppression caused by oncogenic E1A via Rb inactivation is an essential step in cell cycle progression promoted by c-Myc, and subsequently, E1A transformation. We propose a novel G1 arrest signaling mechanism by which Rb indirectly curbs oncogenic c-Myc activity via sustaining Bin1 expression.
Insights
Adenovirus E1A oncogene suppresses Bin1 expression through Rb inactivation, promoting c-Myc activity and cell transformation. This reveals a novel Rb-mediated G1 arrest pathway that sustains Bin1 to curb c-Myc.
Area of Science:
- Molecular Biology
- Oncology
- Cell Biology
Background:
- Adenovirus E1A oncogene cooperates with Ras to transform cells.
- Bin1 tumor suppressor inhibits Ras/E1A-mediated transformation.
- E1A's mechanism to counteract Bin1 and activate c-Myc is unclear.
Purpose of the Study:
- Investigate the mechanism by which E1A counteracts Bin1.
- Determine if Bin1 is a component of Rb-mediated G1 arrest.
- Elucidate the role of Bin1 suppression in E1A-driven cell transformation.
Main Methods:
- Assessed Bin1 expression in response to E1A and Rb status.
- Utilized chromatin immunoprecipitation to study Rb-Bin1 promoter interaction.
- Employed siRNA and antisense transfection to deplete Bin1.
- Measured E2F1's effect on Bin1 promoter activity.
Main Results:
- Wild-type E1A, but not Rb-binding defective E1A, suppresses Bin1 expression.
- Rb inactivation by E1A, HPV E7, or Rb siRNA decreases Bin1 promoter activity.
- Rb activation during serum starvation enhances Bin1 levels and binds its promoter.
- E2F1 represses Bin1 promoter activity.
- Bin1 depletion releases c-Myc activity and accelerates proliferation.
Conclusions:
- Bin1 is a novel component of Rb-mediated G1 arrest.
- E1A suppresses Bin1 via Rb inactivation, promoting c-Myc-driven cell cycle progression and transformation.
- Rb indirectly inhibits c-Myc by sustaining Bin1 expression, representing a new G1 arrest signaling pathway.
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