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Updated: May 19, 2026

Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
p53 Dimers associate with a head-to-tail response element to repress cyclin B transcription
Robert Lipski1, Daniel J Lippincott, Brittany C Durden
1Department of Biology, University of Hartford, West Hartford, Connecticut, United States of America.
Abstract:
DNA damage induced by the topoisomerase I inhibitor SN38 activates cell cycle checkpoints which promote cell cycle arrest. This arrest can be abrogated in p53-defective cells by the Chk1 inhibitor 7-hydroxystaurosporine (UCN-01). Previously, we compared p53 wild-type MCF10A cells with derivatives whose p53 function was inhibited by over-expression of the tetramerization domain (MCF10A/OD) or expression of shRNA against p53 (MCF10A/Δp53). Treatment of SN38-arrested MCF10A/OD cells with UCN-01 abrogated S, but not G2 arrest, while the MCF10A/Δp53 cells abrogated both S and G2 arrest. The MCF10A/OD cells had reduced levels of cyclin B, suggesting that tetramerization of p53 is not required for repression of cyclin B gene expression. In the present study, we analyzed p53 oligomerization status using glutaraldehyde cross-linking. Following SN38 treatment, MCF10A cells contained oligomeric forms of p53 with molecular weights approximating monomers, dimers, trimers, and tetramers. However, MCF10A/OD cells possessed only monomers and dimers suggesting that these complexes may be involved in repression of cyclin B. While genes transcriptionally activated by p53 contain a consensus sequence with elements repeated in a head-to-head orientation, the cyclin B promoter contains similar elements oriented head-to-tail. Chromatin immunoprecipitation (ChIP) assays revealed that p53 associates with this head-to-tail element in both MCF10A and MCF10A/OD. Electrophoretic mobility shift assays (EMSA) using a biotin-labeled probe containing the head-to-tail element showed a shift in mobility consistent with the molecular weight of tetramers and dimers in MCF10A nuclear extract, but only the dimer in MCF10A/OD nuclear extract. Taken together, these results suggest a novel mechanism whereby p53 dimers associate with the head-to-tail element to repress cyclin B transcription.
Insights
p53 dimers, not tetramers, bind DNA to suppress cyclin B, a novel mechanism for cell cycle control after DNA damage. This impacts understanding of cancer cell responses to topoisomerase I inhibitors.
Area of Science:
- Molecular Biology
- Cell Cycle Regulation
- Cancer Research
Background:
- DNA damage triggers cell cycle arrest via checkpoints.
- Topoisomerase I inhibitor SN38 induces DNA damage and cell cycle arrest.
- p53 protein plays a crucial role in cell cycle arrest.
- Chk1 inhibitor UCN-01 can abrogate cell cycle arrest in p53-defective cells.
Purpose of the Study:
- To investigate the role of p53 oligomerization in regulating cyclin B gene expression.
- To elucidate the mechanism by which p53 represses cyclin B transcription.
- To compare p53 function in wild-type and p53-defective cells.
Main Methods:
- Glutaraldehyde cross-linking to analyze p53 oligomerization.
- Chromatin immunoprecipitation (ChIP) assays to assess p53 binding to the cyclin B promoter.
- Electrophoretic mobility shift assays (EMSA) to study p53-DNA interactions.
Main Results:
- SN38 treatment induced p53 monomers, dimers, trimers, and tetramers in wild-type cells.
- p53-defective cells (MCF10A/OD) showed reduced levels of cyclin B and only p53 monomers and dimers.
- p53 associated with a head-to-tail element in the cyclin B promoter.
- EMSA confirmed p53 dimer binding to the cyclin B promoter in p53-defective cells.
Conclusions:
- p53 dimers, not tetramers, bind to the head-to-tail element in the cyclin B promoter.
- This interaction represses cyclin B transcription, contributing to cell cycle arrest.
- A novel mechanism of p53-mediated repression of cyclin B is proposed.
Related Concept Videos
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Abnormal Proliferation
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DNA Damage can Stall the Cell Cycle
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