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Analysis of Cell Cycle Position in Mammalian Cells
Published on: January 21, 2012
PARP1 Deficiency Reduces Tumour Growth by Decreasing E2F1 Hyperactivation: A Novel Mechanism in the Treatment of
Pablo Iglesias1, Marcos Seoane1, Irene Golán1
1Molecular Oncology Laboratory MOL, Departamento de Fisioloxía, Centro Singular de Investigación en Medicina Molecular e Enfermidades Crónicas (CiMUS), Facultade de Medicina, Universidade de Santiago de Compostela, Instituto de Investigación Sanitaria de Santiago de Compostela (IDIS), 15782 Santiago de Compostela, Spain.
Abstract:
In recent years, poly (ADP-ribose) polymerase (PARP) inhibitors have been evaluated for treating homologous recombination-deficient tumours, taking advantage of synthetic lethality. However, increasing evidence indicates that PARP1 exert several cellular functions unrelated with their role on DNA repair, including function as a co-activator of transcription through protein-protein interaction with E2F1. Since the RB/E2F1 pathway is among the most frequently mutated in many tumour types, we investigated whether the absence of PARP activity could counteract the consequences of E2F1 hyperactivation. Our results demonstrate that genetic ablation of Parp1 extends the survival of Rb-null embryos, while genetic inactivation of Parp1 results in reduced development of pRb-dependent tumours. Our results demonstrate that PARP1 plays a key role as a transcriptional co-activator of the transcription factor E2F1, an important component of the cell cycle regulation. Considering that most oncogenic processes are associated with cell cycle deregulation, the disruption of this PARP1-E2F1 interaction could provide a new therapeutic target of great interest and a wide spectrum of indications.
Insights
Poly (ADP-ribose) polymerase 1 (PARP1) acts as a transcriptional co-activator for E2F1. Inhibiting PARP1 may offer a novel therapeutic strategy for cancers with cell cycle deregulation.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Poly (ADP-ribose) polymerase (PARP) inhibitors are used for homologous recombination-deficient tumors.
- PARP1 has functions beyond DNA repair, including transcriptional co-activation with E2F1.
- The RB/E2F1 pathway is frequently mutated in various cancers.
Purpose of the Study:
- To investigate if inhibiting PARP activity can counteract E2F1 hyperactivation.
- To explore the role of PARP1 as a co-activator for the transcription factor E2F1.
Main Methods:
- Genetic ablation of Parp1 in Rb-null embryos.
- Genetic inactivation of Parp1 in pRb-dependent tumor models.
Main Results:
- Genetic ablation of Parp1 extended survival in Rb-null embryos.
- Parp1 inactivation reduced the development of pRb-dependent tumors.
- PARP1 was confirmed to be a key transcriptional co-activator for E2F1.
Conclusions:
- PARP1 plays a critical role in transcriptional co-activation of E2F1, a key regulator of the cell cycle.
- Disrupting the PARP1-E2F1 interaction presents a potential therapeutic target for a broad range of cancers associated with cell cycle deregulation.
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