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Analysis of Cell Cycle Position in Mammalian Cells
Published on: January 21, 2012
Regulation of E2F1-induced apoptosis by poly(ADP-ribosyl)ation
A Kumari1, T Iwasaki2, S Pyndiah3
11] Department of Biochemistry and Molecular Biology, Medical College of Georgia, Georgia Regents University Cancer Center, Augusta, GA 30912, USA [2] Molecular Signaling Program, Stanley S. Scott Cancer Center, Louisiana State University Health Sciences Center, New Orleans, LA 70112, USA.
Abstract:
The transcription factor adenovirus E2 promoter-binding factor (E2F)-1 normally enhances cell-cycle progression, but it also induces apoptosis under certain conditions, including DNA damage and serum deprivation. Although DNA damage facilitates the phosphorylation and stabilization of E2F1 to trigger apoptosis, how serum starvation renders cells vulnerable to E2F1-induced apoptosis remains unclear. Because poly(ADP-ribose) polymerase 1 (PARP1), a nuclear enzyme essential for genomic stability and chromatin remodeling, interacts directly with E2F1, we investigated the effects of PARP1 on E2F1-mediated functions in the presence and absence of serum. PARP1 attenuation, which increased E2F1 transactivation, induced G2/M cell-cycle arrest under normal growth conditions, but enhanced E2F1-induced apoptosis in serum-starved cells. Interestingly, basal PARP1 activity was sufficient to modify E2F1 by poly(ADP-ribosyl)ation, which stabilized the interaction between E2F1 and the BIN1 tumor suppressor in the nucleus. Accordingly, BIN1 acted as an RB1-independent E2F1 corepressor. Because E2F1 directly activates the BIN1 gene promoter, BIN1 curbed E2F1 activity through a negative-feedback mechanism. Conversely, when the BIN1-E2F1 interaction was abolished by PARP1 suppression, E2F1 continuously increased BIN1 levels. This is functionally germane, as PARP1-depletion-associated G2/M arrest was reversed by the transfection of BIN1 siRNA. Moreover, PARP-inhibitor-associated anti-transformation activity was compromised by the coexpression of dominant-negative BIN1. Because serum starvation massively reduced the E2F1 poly(ADP-ribosyl)ation, we conclude that the release of BIN1 from hypo-poly(ADP-ribosyl)ated E2F1 is a mechanism by which serum starvation promotes E2F1-induced apoptosis.
Insights
Poly(ADP-ribose) polymerase 1 (PARP1) regulates cell death by modulating the interaction between E2F1 and BIN1. Serum starvation disrupts this PARP1-dependent regulation, promoting apoptosis by releasing E2F1 from BIN1.
Area of Science:
- Molecular Biology
- Cell Biology
- Cancer Research
Background:
- The transcription factor E2F1 (adenovirus E2 promoter-binding factor 1) promotes cell-cycle progression but can induce apoptosis under stress.
- DNA damage stabilizes E2F1 to trigger apoptosis, but the mechanism underlying serum starvation-induced apoptosis is unclear.
- Poly(ADP-ribose) polymerase 1 (PARP1) is crucial for genomic stability and interacts with E2F1.
Purpose of the Study:
- To investigate the role of PARP1 in E2F1-mediated functions, particularly under serum starvation.
- To elucidate the mechanism by which serum starvation sensitizes cells to E2F1-induced apoptosis.
Main Methods:
- Investigated PARP1's effect on E2F1 activity and cell-cycle progression under normal and serum-deprived conditions.
- Analyzed the poly(ADP-ribosyl)ation of E2F1 and its interaction with BIN1.
- Utilized siRNA and dominant-negative constructs to assess the functional significance of the E2F1-BIN1 interaction.
Main Results:
- PARP1 inhibition enhanced E2F1 transactivation, causing G2/M arrest in normal cells but promoting apoptosis in serum-starved cells.
- PARP1 poly(ADP-ribosyl)ated E2F1, stabilizing its interaction with the tumor suppressor BIN1, which acts as an E2F1 corepressor.
- Serum starvation reduced E2F1 poly(ADP-ribosyl)ation, disrupting the E2F1-BIN1 interaction and leading to apoptosis.
Conclusions:
- PARP1-mediated poly(ADP-ribosyl)ation of E2F1 is essential for its interaction with BIN1, a negative regulator of E2F1.
- Serum starvation abrogates E2F1 poly(ADP-ribosyl)ation, releasing BIN1 and promoting E2F1-induced apoptosis.
- This mechanism highlights a novel pathway linking serum availability, PARP1 activity, and cell fate decisions.
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