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Coupling of cell growth control and apoptosis functions of Id proteins
1CRC Department of Gene Regulation, Paterson Institute for Cancer Research, Christie Hospital NHS Trust, Manchester, United Kingdom. grgjdn@picr.cr.man.ac.uk
Abstract:
The Id family of helix-loop-helix proteins function as negative regulators of cell differentiation and as positive regulators of G1 cell cycle control. We report here that enforced overexpression of the Id3 gene suppresses the colony-forming efficiency of primary rat embryo fibroblasts. Cotransfection with the antiapoptotic Bcl2 or BclXL gene alleviates this suppression and leads to cell immortalization. Consistent with this, enforced expression of Id genes in isolation was found to be a strong inducer of apoptosis in serum-deprived fibroblast cells. Id3-induced apoptosis was mediated at least in part through p53-independent mechanisms and could be efficiently rescued by Bcl2, BclXL, and the basic helix-loop-helix protein E47, which is known to oppose the functions of Id3 in vivo through the formation of stable heterodimers. Enforced overexpression of Id proteins has previously been shown to promote the cell cycle S phase in serum-deprived embryo fibroblasts (R. W. Deed, E. Hara, G. Atherton, G. Peters, and J. D. Norton, Mol. Cell. Biol. 17:6815-6821, 1997). The extent of apoptosis induced by loss- and gain-of-function Id3 mutants and by wild-type Id3 either alone or in combination with the Bcl2, BClXL, and E47 genes was invariably correlated with the relative magnitude of cell cycle S phase promotion. In addition, Id3-transfected cell populations displaying apoptosis and those in S phase were largely coincident in different experiments. These findings highlight the close coupling between the G1 progression and apoptosis functions of Id proteins and hint at a common mechanism for this family of transcriptional regulators in cell determination.
Insights
Overexpressing the Id3 gene can induce apoptosis and suppress cell growth, but co-expression with Bcl2 or BclXL rescues these effects, promoting cell immortalization and S phase progression.
Area of Science:
- Molecular Biology
- Cell Biology
- Cancer Research
Background:
- The Id family of helix-loop-helix proteins are key regulators of cell differentiation and the G1 cell cycle.
- Id proteins function as inhibitors of basic helix-loop-helix transcription factors.
Purpose of the Study:
- To investigate the role of Id3 in cell proliferation, apoptosis, and cell cycle control.
- To explore the interplay between Id3, anti-apoptotic proteins (Bcl2, BclXL), and cell cycle regulators.
Main Methods:
- Enforced overexpression of Id3 gene in primary rat embryo fibroblasts.
- Cotransfection with anti-apoptotic genes (Bcl2, BclXL) and E47.
- Analysis of colony-forming efficiency, apoptosis induction, and cell cycle S phase promotion.
Main Results:
- Id3 overexpression suppressed colony-forming efficiency and induced apoptosis, partly via p53-independent pathways.
- Co-expression with Bcl2, BclXL, or E47 rescued Id3-induced apoptosis and suppression.
- Id3-induced apoptosis strongly correlated with cell cycle S phase promotion.
Conclusions:
- Id proteins exhibit a coupled function in promoting G1 progression and apoptosis.
- Bcl2, BclXL, and E47 can counteract Id3-induced apoptosis and cell cycle arrest.
- These findings suggest a common mechanism for Id proteins in cell determination and fate.