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Published on: October 28, 2011
E2F2 converts reversibly differentiated PC12 cells to an irreversible, neurotrophin-dependent state
S P Persengiev1, J Li, M L Poulin
1Department of Cellular and Molecular Physiology, University of Massachusetts Medical School, 55 Lake Avenue North, Worcester, MA 01655, USA.
Abstract:
E2Fs play a central role in cell proliferation and growth arrest through their ability to regulate genes involved in cell cycle progression, arrest and apoptosis. Recent studies further indicate that this family of transcriptional regulators participate in cell fate/differentiation events. They are thus likely to have a prominent role in controlling the terminal differentiation process and its irreversibility. Here we have specifically examined the role of E2F2 in neuronal differentiation using a gain-of-function approach. Endogenous E2F2 increased in PC12 cells in response to nerve growth factor (NGF) and was also expressed in cerebellar granule neurons undergoing terminal differentiation. While PC12 cells normally undergo reversible dedifferentiation and cell cycle re-entry upon NGF removal, forced expression of E2F2 inhibited these events and induced apoptosis. Thus, E2F2 converted PC12-derived neurons from a reversible to a 'terminally' differentiated, NGF-dependent state, analogous to postmitotic sympathetic neurons. This contrasts with the effects of E2F4, which enhances the differentiation state of PC12 cells without affecting cell cycle parameters or survival. These results indicate that E2F2 may have a unique role in maintaining the postmitotic state of terminally differentiated neurons, and may participate in apoptosis in neurons attempting to re-enter the cell cycle. It may also be potentially useful in promoting the terminally arrested/differentiated state of tumor cells.
Insights
The transcription factor E2F2 promotes irreversible neuronal differentiation and apoptosis in PC12 cells, unlike E2F4. This suggests E2F2
Area of Science:
- Molecular Biology
- Neuroscience
- Cell Biology
Background:
- E2F transcription factors regulate cell proliferation, growth arrest, and apoptosis.
- Recent evidence suggests E2F family members also influence cell fate and differentiation.
- Their role in terminal differentiation, particularly neuronal differentiation, remains to be fully elucidated.
Purpose of the Study:
- To investigate the specific role of E2F2 in neuronal differentiation.
- To determine if E2F2 can induce terminal differentiation in a neuronal cell model.
- To compare the function of E2F2 with E2F4 in neuronal differentiation.
Main Methods:
- Utilized a gain-of-function approach in PC12 cells.
- Analyzed endogenous E2F2 expression in response to nerve growth factor (NGF).
- Examined E2F2 expression in cerebellar granule neurons undergoing terminal differentiation.
Main Results:
- Endogenous E2F2 levels increased in PC12 cells upon NGF treatment.
- Forced E2F2 expression in PC12 cells inhibited dedifferentiation and cell cycle re-entry after NGF withdrawal.
- E2F2 overexpression induced apoptosis in PC12-derived neurons, creating a terminally differentiated state.
- E2F4 enhanced differentiation without impacting cell cycle or survival.
Conclusions:
- E2F2 plays a unique role in establishing and maintaining the postmitotic state of terminally differentiated neurons.
- E2F2 may induce apoptosis in neurons attempting to re-enter the cell cycle.
- E2F2 could be a potential therapeutic target for promoting terminal differentiation in cancer cells.

