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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Consequences of DJ-1 upregulation following p53 loss and cell transformation
S Vasseur1, S Afzal, R Tomasini
1Institut National de la Santé et de la Recherche Médicale Unité 624, Marseille, France.
Abstract:
p53 is a tumor suppressor that responds to various stress signals by initiating cell-cycle arrest, senescence and apoptosis. Mutations of the p53 gene are found in over 50% of human tumors, highlighting the importance of p53 in tumor suppression. Numerous studies have reported on the interactions between p53, IGF-1-AKT and mTOR pathways as potentially explaining some of the tumor suppressive activities of p53. To further understand the basis of these interactions, we analyzed the involvement of DJ-1, an oncogene known to drive AKT-mediated cell survival, in the p53-AKT axis. In this study, we show that DJ-1 and p53 are tightly 'linked': p53 prevents the accumulation of DJ-1 protein, whereas loss of p53 leads to stabilization and enhancement of DJ-1 expression. Interestingly, this increase in DJ-1 level is only observed when p53 loss is accompanied by transformation of cells. Moreover, DJ-1 seems to be required for the enhanced activation of AKT observed in p53-deficient cells. Such observation confers a new property to DJ-1 associated to transforming-process to its oncogenic ability to drive AKT activation. We also show that DJ-1 is necessary for p53 activation following oxidative stress, suggesting the existence of a finely regulated loop between these two proteins in transformed cells. Finally, we demonstrate that in the absence of p53, DJ-1 is stabilized by ROS accumulation, and surprisingly seems to be required for this high intracellular ROS production. These data offer new insights into the regulation of DJ-1 and suggest that DJ-1 is a target of p53. Importantly, our study highlights that during transformation, DJ-1 is having a key role in the p53-regulated AKT pathway and p53-driven oxidative-stress response.
Insights
The tumor suppressor p53 regulates DJ-1 protein levels, preventing its accumulation. Loss of p53 enhances DJ-1, promoting AKT activation and oxidative stress during cell transformation.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- p53 is a critical tumor suppressor involved in cell-cycle arrest, senescence, and apoptosis.
- Mutations in the p53 gene are prevalent in human cancers, underscoring its role in tumor suppression.
- Interactions between p53, IGF-1-AKT, and mTOR pathways are implicated in p53's tumor-suppressive functions.
Purpose of the Study:
- To investigate the role of DJ-1, an oncogene promoting AKT-mediated cell survival, in the p53-AKT signaling axis.
- To elucidate the regulatory relationship between p53 and DJ-1, particularly in the context of cell transformation and oxidative stress.
Main Methods:
- Analysis of DJ-1 protein levels in relation to p53 status and cellular transformation.
- Assessment of DJ-1's requirement for AKT activation in p53-deficient cells.
- Investigation of DJ-1's role in p53 activation and reactive oxygen species (ROS) production under oxidative stress.
Main Results:
- p53 negatively regulates DJ-1 protein accumulation; p53 loss leads to DJ-1 stabilization and increased expression, especially during cell transformation.
- DJ-1 is essential for enhanced AKT activation in p53-deficient cells and is required for p53 activation following oxidative stress.
- In p53-null cells, DJ-1 is stabilized by ROS and appears necessary for high intracellular ROS levels, suggesting a feedback loop.
Conclusions:
- DJ-1 is a novel target of p53, with its expression tightly regulated by p53.
- During cell transformation, DJ-1 plays a crucial role in the p53-regulated AKT pathway and p53-mediated oxidative-stress response.
- These findings reveal a new layer of regulation involving DJ-1 in cancer development and response to cellular stress.
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