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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
p53 downregulates its activating vaccinia-related kinase 1, forming a new autoregulatory loop
Alberto Valbuena1, Francisco M Vega, Sandra Blanco
1IBMCC-Centro de Investigación del Cáncer, CSIC-Universidad de Salamanca, Campus Miguel de Unamuno, E-37007 Salamanca, Spain.
Abstract:
The stable accumulation of p53 is detrimental to the cell because it blocks cell growth and division. Therefore, increases in p53 levels are tightly regulated, mainly by its transcriptional target, mdm2, that downregulates p53. Elucidation of new signaling pathways requires the characterization of the members and the nature of their connection. Vaccinia-related kinase 1 (VRK1) contributes to p53 stabilization by partly interfering with its mdm2-mediated degradation, among other mechanisms; therefore, it is likely that some form of autoregulation between VRK1 and p53 must occur. We report here the identification of an autoregulatory loop between p53 and its stabilizing VRK1. There is an inverse correlation between VRK1 and p53 levels in cell lines, and induction of p53 by UV light downregulates VRK1 in fibroblasts. As the amount of p53 protein increases, there is a downregulation of the VRK1 protein level independent of its promoter. This effect is indirect but requires a transcriptionally active p53. The three most common transcriptionally inactive mutations detected in hereditary (Li-Fraumeni syndrome) and sporadic human cancer, p53(R175H), p53(R248W), and p53(R273H), as well as p53(R280K), are unable to induce downregulation of VRK1 protein. The p53 isoforms Delta40p53 and p53beta, lacking the transactivation and oligomerization domains, respectively, do not downregulate VRK1. VRK1 downregulation induced by p53 is independent of mdm2 activity and proteasome-mediated degradation since it occurs in the presence of proteasome inhibitors and in mdm2-deficient cells. The degradation of VRK1 is sensitive to chloroquine, an inhibitor of the late endosome-lysosome transport, and to serine protease inhibitors of the lysosomal pathway.
Insights
The tumor suppressor p53 forms an autoregulatory loop with Vaccinia-related kinase 1 (VRK1), where increased p53 downregulates VRK1. This interaction is crucial for cell cycle regulation and cancer research.
Area of Science:
- Cell Biology
- Molecular Oncology
- Signal Transduction
Background:
- The tumor suppressor p53 is critical for preventing cell proliferation, and its levels are tightly regulated, primarily by MDM2.
- Vaccinia-related kinase 1 (VRK1) is known to stabilize p53 through mechanisms that partially inhibit MDM2-mediated degradation.
- Understanding the interplay between p53 and its regulators is essential for elucidating cellular signaling pathways.
Purpose of the Study:
- To identify and characterize a potential autoregulatory loop between p53 and its stabilizer, VRK1.
- To investigate how p53 influences VRK1 protein levels and the mechanisms involved.
Main Methods:
- Correlation analysis of VRK1 and p53 levels in various cell lines.
- UV-induced p53 activation and subsequent VRK1 level assessment in fibroblasts.
- Analysis of VRK1 downregulation by wild-type and mutant p53 proteins, including isoforms.
- Assessment of VRK1 degradation pathways using proteasome and lysosome inhibitors.
Main Results:
- An inverse correlation was observed between VRK1 and p53 protein levels across cell lines.
- UV-induced p53 activation led to the downregulation of VRK1 protein, independent of its promoter.
- Transcriptionally inactive p53 mutants and specific p53 isoforms failed to downregulate VRK1.
- VRK1 downregulation by p53 was independent of MDM2 and proteasome activity, but sensitive to lysosomal pathway inhibitors.
Conclusions:
- A novel autoregulatory loop exists where active p53 downregulates VRK1 protein levels.
- This downregulation mechanism is indirect, requires transcriptionally active p53, and involves lysosomal degradation of VRK1.
- The findings reveal a new layer of p53 regulation impacting cell growth and division, with implications for cancer therapy.
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