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Updated: Mar 14, 2026

Analysis of Cell Cycle Position in Mammalian Cells
Published on: January 21, 2012
Deregulation of the pRb-E2F4 axis alters epidermal homeostasis and favors tumor development
Clotilde Costa1,2, Mirentxu Santos1,3, Mónica Martínez-Fernández1,3
1Unidad de Oncología Molecular, CIEMAT (ed70A), 28040 Madrid, Spain.
Abstract:
E2F/RB activity is altered in most human tumors. The retinoblastoma family of proteins plays a key role in regulating the progression of the cell cycle from the G1 to S phases. This is achieved through negative regulation of E2F transcription factors, important positive regulators of cell cycle entry. E2F family members are divided into two groups: activators (E2F1-E2F3a) and repressors (E2F3b-E2F8). E2F4 accounts for a large part of the E2F activity and is a main E2F repressor member in vivo. Perturbations in the balance from quiescence towards proliferation contribute to increased mitotic gene expression levels frequently observed in cancer. We have previously reported that combined Rb1-Rbl1 or Rb1-E2f1 ablation in epidermis produces important alterations in epidermal proliferation and differentiation, leading to tumor development. However, the possible roles of E2F4 in this context are still to be determined. Here, we show the absence of any discernible phenotype in the skin of mice lacking of E2f4. In contrast, the inducible loss of Rb1 in the epidermis of E2F4-null mice produced multiple skin abnormalities including altered differentiation and proliferation, spontaneous wounds, carcinoma in situ development and stem cell perturbations. All these phenotypic alterations are associated with extensive gene expression changes, the induction of c-myc and the Akt activation. Moreover the whole transcriptome analyses in comparison with previous models generated also revealed extensive changes in multiple repressive complexes and in transcription factor activity. These results point to E2F4 as a master regulator in multiple steps of epidermal homeostasis in Rb1 absence.
Insights
E2F4 is crucial for maintaining skin health when Rb1 is absent. Its loss, combined with Rb1 loss, causes severe skin abnormalities and cancer development, highlighting E2F4
Area of Science:
- Molecular Biology
- Cancer Research
- Dermatology
Background:
- The E2F/RB pathway regulates cell cycle progression, crucial for preventing cancer.
- E2F transcription factors are key regulators, with E2F4 acting as a major repressor.
- Previous studies showed Rb1/E2f1 loss causes skin tumors, but E2F4's role remained unclear.
Purpose of the Study:
- To investigate the role of E2F4 in epidermal homeostasis and tumor development, particularly in the context of Rb1 loss.
Main Methods:
- Generated E2F4-null mice and utilized inducible Rb1 ablation in the epidermis.
- Phenotypic analysis of skin abnormalities, including proliferation, differentiation, and tumor formation.
- Whole transcriptome analysis to identify gene expression changes and molecular pathways involved.
Main Results:
- E2F4-null mice showed no skin phenotype on their own.
- Inducible Rb1 loss in E2F4-null mice led to severe skin abnormalities: altered differentiation/proliferation, spontaneous wounds, and carcinoma in situ.
- Phenotypic changes were linked to c-myc induction, Akt activation, and significant transcriptome alterations.
Conclusions:
- E2F4 is essential for maintaining epidermal homeostasis in the absence of Rb1.
- E2F4 acts as a master regulator in multiple steps of skin maintenance when Rb1 is compromised.
- These findings identify E2F4 as a potential therapeutic target in Rb1-deficient skin cancers.
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