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Updated: Jun 27, 2025

Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Elucidating the chain of command: our current understanding of critical target genes for p53-mediated tumor
Alexandra Indeglia1,2, Maureen E Murphy1
1Molecular and Cellular Oncogenesis Program, The Wistar Institute, Philadelphia, PA, USA.
Abstract:
TP53 encodes a transcription factor that is centrally-involved in several pathways, including the control of metabolism, the stress response, DNA repair, cell cycle arrest, senescence, programmed cell death, and others. Since the discovery of TP53 as the most frequently-mutated tumor suppressor gene in cancer over four decades ago, the field has focused on uncovering target genes of this transcription factor that are essential for tumor suppression. This search has been fraught with red herrings, however. Dozens of p53 target genes were discovered that had logical roles in tumor suppression, but subsequent data showed that most were not tumor suppressive, and were dispensable for p53-mediated tumor suppression. In this review, we focus on p53 transcriptional targets in two categories: (1) canonical targets like CDKN1A (p21) and BBC3 (PUMA), which clearly play critical roles in p53-mediated cell cycle arrest/senescence and cell death, but which are not mutated in cancer, and for which knockout mice fail to develop spontaneous tumors; and (2) a smaller category of recently-described p53 target genes that are mutated in human cancer, and which appear to be critical for tumor suppression by p53. Interestingly, many of these genes encode proteins that control broad cellular pathways, like splicing and protein degradation, and several of them encode proteins that feed back to regulate p53. These include ZMAT3, GLS2, PADI4, ZBXW7, RFX7, and BTG2. The findings from these studies provide a more complex, but exciting, potential framework for understanding the role of p53 in tumor suppression.
Insights
The tumor suppressor TP53 (p53) has many target genes. This review categorizes p53 targets into canonical and newly discovered genes critical for tumor suppression.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- TP53 is a crucial tumor suppressor gene, frequently mutated in cancer.
- Decades of research have sought to identify its tumor-suppressive target genes.
- Many previously identified targets were found to be non-essential for p53's tumor suppression.
Purpose of the Study:
- To review and categorize TP53 transcriptional targets based on their role in tumor suppression.
- To highlight canonical p53 targets and recently identified cancer-mutated targets.
- To explore the complex regulatory network involving p53 and its targets.
Main Methods:
- Literature review focusing on p53 transcriptional targets.
- Categorization of targets into canonical and recently identified groups.
- Analysis of target gene mutation status in human cancer and functional roles.
Main Results:
- Canonical targets (e.g., CDKN1A, BBC3) are essential for cell cycle arrest and apoptosis but not mutated in cancer.
- A smaller group of recently identified p53 targets are mutated in cancer and critical for tumor suppression.
- These novel targets regulate key cellular pathways like splicing and protein degradation, with some feeding back to regulate p53.
Conclusions:
- The role of TP53 in tumor suppression is more complex than previously understood.
- Newly identified p53 targets mutated in cancer offer a more accurate framework for understanding p53's function.
- Further research into these novel targets could reveal new therapeutic strategies for cancer.
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