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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Inhibition of p53-mediated transcriptional responses by mithramycin A
George Koutsodontis1, Dimitris Kardassis
1Department of Basic Sciences, University of Crete Medical School, Heraklion, GR-71110, Greece.
Abstract:
In the present work, we show that mithramycin A, a drug that is currently used for the treatment of patients with Paget's disease of the bone as well as with several forms of cancer, is a strong activator of the tumor suppressor p53 protein in human hepatoma cells. The time course of p53 activation by mithramycin A was similar to the known chemotherapeutic compound 5-fluorouracil (5-FU). Both 5-FU and mithramycin A induced site-specific phosphorylation of p53 at serine 15. However, in contrast to 5-FU, mithramycin A failed to activate p53 target genes including the cell cycle inhibitor p21Cip1 gene as well as the proapoptotic genes PUMA (p53-upregulated mediator of apotosis) and BAK (bcl2-homologous antagonist/killer) and blocked the induction of the above genes by 5-FU. Using transactivation assays in Sp1-deficient cells, we showed that mithramycin A inhibited the transcriptional activation of the p21Cip1 and PUMA promoters by Sp1 and p53. Using chromatin immunoprecipitation assays and a novel protein-protein interaction assay based on biotinylation in vivo, we established that 5-FU enhanced the formation of p53-Sp1 complexes in solution and the subsequent recruitment of both factors to the p21Cip1 promoter. Mithramycin A also enhanced the recruitment of p53 to the distal p21Cip1 promoter but totally blocked the recruitment of Sp1 to the proximal p21Cip1 promoter. Our findings suggest that inhibition of Sp1 binding to the promoters of several p53 target genes, such as the p21Cip1 gene as well as certain proapoptotic genes, by mithramycin A, prevents the transcriptional induction of these genes by p53 and propose a mechanism that could account for some of the tumor suppressing and antiapoptotic effects of mithramycin A.
Insights
Mithramycin A activates the tumor suppressor p53 protein in liver cancer cells, similar to 5-FU. However, it blocks p53 target gene activation by preventing Sp1 transcription factor binding, potentially explaining its anti-cancer effects.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Mithramycin A is used to treat Paget's disease and cancers.
- The tumor suppressor p53 protein plays a critical role in cancer prevention.
- Understanding p53 activation pathways is crucial for developing new cancer therapies.
Purpose of the Study:
- To investigate the effect of mithramycin A on p53 activation and target gene expression in human hepatoma cells.
- To elucidate the mechanism by which mithramycin A influences p53-mediated gene transcription.
- To compare the action of mithramycin A with the chemotherapeutic agent 5-fluorouracil (5-FU).
Main Methods:
- Western blotting to detect p53 phosphorylation.
- Transactivation assays to assess promoter activity.
- Chromatin immunoprecipitation (ChIP) to analyze protein-DNA interactions.
- In vivo biotinylation assay for protein-protein interactions.
Main Results:
- Mithramycin A induced p53 phosphorylation at serine 15, similar to 5-FU.
- Unlike 5-FU, mithramycin A did not activate p53 target genes (p21Cip1, PUMA, BAK).
- Mithramycin A inhibited Sp1 and p53-mediated transcription of p21Cip1 and PUMA.
- Mithramycin A blocked Sp1 recruitment to the p21Cip1 promoter, while enhancing p53 recruitment.
Conclusions:
- Mithramycin A activates p53 but inhibits its transcriptional activity by interfering with Sp1 binding to target gene promoters.
- This mechanism may explain the tumor-suppressing and anti-apoptotic effects of mithramycin A.
- Mithramycin A's distinct mechanism from 5-FU offers insights into differential therapeutic strategies.
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