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Abrogation of FBW7α-dependent p53 degradation enhances p53's function as a tumor suppressor
Vivek Tripathi1, Ekjot Kaur1, Suhas Sampat Kharat1
1National Institute of Immunology, Aruna Asaf Ali Marg, New Delhi 110067, India.
Abstract:
The gene encoding the tumor suppressor p53 is mutated in most cancers. p53 expression is known to be tightly controlled by several E3 ligases. Here, we show that F-box and WD repeat domain-containing 7α (FBW7α), the substrate-recognition component of the SCFFBW7 multiprotein E3 ligase complex, targets both WT and tumor-derived mutants of p53 for proteasomal degradation in multiple human cancer cell lines (HCT116 and U2OS). We found that lack of FBW7α stabilizes p53 levels, thereby increasing its half-life. p53 ubiquitylation and subsequent degradation require the F-box and the C-terminal WD40 repeats in FBW7α. The polyubiquitylation of p53 occurred via Lys-48 linkage and involved phosphorylation on p53 at Ser-33 and Ser-37 by glycogen synthase kinase 3β (GSK3β) and DNA-dependent protein kinase (DNA-PK), respectively. These phosphorylation events created a phosphodegron that enhanced p53 binding to FBW7α, allowing for the attachment of polyubiquitin moieties at Lys-132 in p53. FBW7α-dependent p53 polyubiquitylation apparently occurred during and immediately after DNA double-strand breaks induced by either doxorubicin or ionizing radiation. Accordingly, in cells lacking FBW7α, p53 induction was enhanced after DNA damage. Phosphodegron-mediated polyubiquitylation of p53 on Lys-132 had functional consequences, with cells in which FBW7α-mediated p53 degradation was abrogated exhibiting enhancement of their tumorigenic potential. We conclude that p53, which previously has been reported to transactivate FBW7, is also targeted by the same E3 ligase for degradation, suggesting the presence of a regulatory feedback loop that controls p53 levels and functions during DNA damage.
Insights
The E3 ligase FBW7α targets the tumor suppressor p53 for degradation, controlling its levels and function during DNA damage. Loss of FBW7α stabilizes p53, enhancing tumorigenic potential.
Area of Science:
- Molecular Biology
- Cancer Biology
- Biochemistry
Background:
- The tumor suppressor p53 is frequently mutated in human cancers.
- p53 expression is regulated by E3 ligases.
- FBW7α is a key component of the SCFFBW7 E3 ligase complex.
Purpose of the Study:
- To investigate the role of FBW7α in regulating p53 stability and function.
- To identify the mechanisms by which FBW7α targets p53 for degradation.
Main Methods:
- Utilized human cancer cell lines (HCT116, U2OS).
- Assessed p53 ubiquitylation and degradation.
- Investigated the role of p53 phosphorylation (Ser-33, Ser-37) and specific FBW7α domains (F-box, WD40 repeats).
- Induced DNA double-strand breaks using doxorubicin and ionizing radiation.
Main Results:
- FBW7α targets both wild-type and mutant p53 for proteasomal degradation.
- Loss of FBW7α increases p53 half-life and enhances p53 induction after DNA damage.
- p53 phosphorylation at Ser-33/37 by GSK3β/DNA-PK creates a phosphodegron for FBW7α binding.
- FBW7α-mediated degradation of p53 at Lys-132 impacts tumorigenic potential.
- A regulatory feedback loop between p53 and FBW7α is suggested.
Conclusions:
- FBW7α acts as a critical regulator of p53 stability through targeted proteasomal degradation.
- FBW7α-mediated p53 regulation is crucial for cellular response to DNA damage.
- Dysregulation of this FBW7α-p53 axis may contribute to cancer development.