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Measurements of Physiological Stress Responses in C. Elegans
Published on: May 21, 2020
Dynamic roles of p53-mediated metabolic activities in ROS-induced stress responses
Le Jiang1, Justin H Hickman1, Shang-Jui Wang1
1a Institute for Cancer Genetics and Department of Pathology and Cell Biology; College of Physicians & Surgeons; Columbia University ; New York , NY USA.
Abstract:
The p53 tumor suppressor is a multifaceted polypeptide that impedes tumorigenesis by regulating a diverse array of cellular processes. Triggered by a wide variety of stress stimuli, p53 transcriptionally regulates genes involved in the canonical tumor suppression pathways of apoptosis, cell-cycle arrest, and senescence. We recently discovered a novel mechanism whereby p53 inhibits cystine uptake through repression of the SLC7A11 gene to mediate ferroptosis. Importantly, this p53-SLC7A11 axis is preserved in the p53(3KR) mutant, and contributes to its ability to suppress tumorigenesis in the absence of the classical tumor suppression mechanisms. Here, we report that wild type p53 can induce both apoptosis and ferroptosis upon reactive oxygen species (ROS)-induced stress. Furthermore, we demonstrate that p53's functional N-terminal domain is required for its capacity to regulate oxidative stress responses and ferroptosis. Notably, activated p53 dynamically modulates intracellular ROS, causing an initial reduction and a subsequent increase of ROS levels. Taken together, these data implicate ferroptosis as an additional component of the cell death program induced by wild type p53 in human cancer cells, and reveal a complex and dynamic role of p53 in oxidative stress responses.
Insights
The p53 tumor suppressor protein can trigger cancer cell death through apoptosis and ferroptosis. This study reveals p53
Area of Science:
- Molecular Biology
- Cancer Research
- Cell Death Pathways
Background:
- The p53 tumor suppressor is crucial for preventing cancer.
- p53 regulates apoptosis, cell-cycle arrest, and senescence.
- A novel p53-mediated ferroptosis pathway involving SLC7A11 was recently identified.
Purpose of the Study:
- To investigate the role of wild type p53 in inducing ferroptosis.
- To explore the p53-SLC7A11 axis in response to oxidative stress.
- To elucidate the dynamic regulation of reactive oxygen species (ROS) by p53.
Main Methods:
- Analysis of p53's role in apoptosis and ferroptosis induction.
- Investigation of the p53 N-terminal domain's function in oxidative stress response.
- Measurement of intracellular ROS levels modulated by p53.
Main Results:
- Wild type p53 induces both apoptosis and ferroptosis under ROS-induced stress.
- The p53 N-terminal domain is essential for regulating oxidative stress and ferroptosis.
- Activated p53 dynamically alters intracellular ROS levels, with an initial decrease followed by an increase.
Conclusions:
- Ferroptosis is an integral part of the p53-induced cell death program in human cancer cells.
- p53 plays a complex and dynamic role in managing oxidative stress responses.
- The p53-SLC7A11 pathway contributes to tumor suppression, even in p53 mutants lacking classical functions.
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