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Published on: January 21, 2012
Identification and characterization of E2F7, a novel mammalian E2F family member capable of blocking cellular
Alain de Bruin1, Baidehi Maiti, Laszlo Jakoi
1Human Cancer Genetics Program, Department of Molecular Virology, Immunology and Medical Genetics, The Ohio State University, Columbus, OH 43210, USA.
Abstract:
The mammalian E2F family of transcription factors plays a crucial role in the regulation of cellular proliferation, apoptosis, and differentiation. Consistent with its biological role in a number of important cellular processes, E2F regulates the expression of genes involved in cell cycle, DNA replication, DNA repair, and mitosis. It has proven difficult, however, to determine the specific roles played by the various known family members in these cellular processes. The work presented here now extends the complexity of this family even further by the identification of a novel E2F family member, which we now term E2F7. Like the expression of the known E2F activators, E2F1, E2F2, and E2F3, the expression of E2F7 is growth-regulated, at least in part, through E2F binding elements on its promoter, and its protein product is localized to the nucleus and associates with DNA E2F recognition sites with high affinity. A number of salient features, however, make this member unique among the E2F family. First, the E2F7 gene encodes a protein that possesses two distinct DNA-binding domains and that lacks a dimerization domain as well as a transcriptional activation and a retinoblastoma-binding domain. In contrast to the E2F activators, E2F7 can block the E2F-dependent activation of a subset of E2F target genes as well as mitigate cellular proliferation of mouse embryo fibroblasts. These findings identify E2F7 as a novel member of the mammalian E2F transcription factor family that has properties of a transcriptional repressor capable of negatively influencing cellular proliferation.
Insights
Researchers identified E2F7, a novel mammalian transcription factor. This E2F7 protein acts as a repressor, inhibiting cellular proliferation and adding complexity to the E2F family
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- The E2F family of transcription factors is essential for regulating cell proliferation, apoptosis, and differentiation.
- E2F proteins control genes involved in cell cycle, DNA replication, repair, and mitosis.
- Specific roles of individual E2F family members remain challenging to elucidate.
Purpose of the Study:
- To identify and characterize novel members of the mammalian E2F transcription factor family.
- To understand the unique properties and functions of the newly discovered E2F7.
Main Methods:
- Identification of a novel gene encoding a new E2F family member, termed E2F7.
- Analysis of E2F7 gene expression regulation, including promoter analysis.
- Characterization of E2F7 protein localization and DNA-binding properties.
- Assessment of E2F7's impact on E2F-dependent gene activation and cellular proliferation.
Main Results:
- A novel mammalian E2F family member, E2F7, was identified.
- E2F7 expression is growth-regulated via its promoter's E2F binding elements.
- E2F7 protein localizes to the nucleus and binds DNA with high affinity.
- E2F7 possesses two DNA-binding domains but lacks dimerization, activation, and retinoblastoma-binding domains.
- E2F7 inhibits E2F-dependent gene activation and reduces mouse embryo fibroblast proliferation.
Conclusions:
- E2F7 represents a novel mammalian transcription factor with unique structural features.
- E2F7 functions as a transcriptional repressor, negatively regulating cellular proliferation.
- The discovery of E2F7 expands the known complexity of the E2F transcription factor family.
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