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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Genotoxic stress induces coordinately regulated alternative splicing of the p53 modulators MDM2 and MDM4
Dawn S Chandler1, Ravi K Singh, Lisa C Caldwell
1Center for Childhood Cancer, Columbus Children's Research Institute and Department of Pediatrics, The Ohio State University, Columbus, OH 43205, USA. chandler@ccri.net
Abstract:
The tumor suppressor protein p53 is a transcription factor that induces G(1) arrest of the cell cycle and/or apoptosis. The murine double-minute protein MDM2 and its homologue MDM4 (also known as MDMX) are critical regulators of p53. Altered transcripts of the human homologue of mdm2, MDM2, have been identified in human tumors, such as invasive carcinoma of the breast, lung carcinoma, and liposarcoma. MDM2 alternate forms act to negatively regulate the normal MDM2 gene product, thus activating p53. Although many reports have documented a plethora of tumor types characterized by MDM2 alternative transcripts, few have investigated the signals that might initiate alternative splicing. We have identified a novel role of these alternative MDM2 transcripts in the normal surveillance mechanism of the cell and in DNA damage response. We report that alternate forms of MDM2 are detected after UV irradiation. Furthermore, we show that mouse cells treated with UV are also characterized by alternative transcripts of mdm2, suggesting that this is an important and evolutionarily conserved mechanism for regulating the expression of MDM2/mdm2. An additional p53 regulator and mdm2 family member, MDM4, is likewise alternatively spliced following UV irradiation. By activating alternative splicing of both MDM2 and MDM4, yet another layer of p53 regulation is initiated by the cells in response to damage. A stepwise model for malignant conversion by which alternate forms of MDM2 and MDM4 place selective pressure on the cells to acquire additional alterations in the p53 pathway is herein proposed.
Insights
Alternative forms of MDM2 and MDM4 transcripts are induced by UV radiation, revealing a conserved DNA damage response mechanism that regulates the tumor suppressor p53.
Area of Science:
- Molecular Biology
- Cancer Research
- Cell Cycle Regulation
Background:
- The tumor suppressor protein p53 is regulated by MDM2 and MDM4.
- Altered MDM2 transcripts are found in various human tumors.
- The signals initiating alternative splicing of MDM2 remain largely uninvestigated.
Purpose of the Study:
- To investigate the role of alternative MDM2 transcripts in cellular surveillance and DNA damage response.
- To identify the signals that trigger alternative splicing of MDM2 and MDM4.
Main Methods:
- Analysis of MDM2 and MDM4 alternative transcripts in human and mouse cells.
- UV irradiation treatment to induce DNA damage.
- Investigating the impact of alternative splicing on p53 regulation.
Main Results:
- Alternative MDM2 transcripts are detected in cells following UV irradiation.
- UV treatment also induces alternative splicing of mdm2 in mouse cells, indicating evolutionary conservation.
- MDM4 also undergoes alternative splicing upon UV exposure.
- This alternative splicing of MDM2 and MDM4 adds a regulatory layer to p53 in response to DNA damage.
Conclusions:
- Alternative splicing of MDM2 and MDM4 is a conserved response to UV-induced DNA damage.
- This mechanism contributes to p53 regulation.
- A model is proposed where alternative MDM2 and MDM4 forms drive malignant conversion by promoting alterations in the p53 pathway.
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