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Updated: May 9, 2026

Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Functions of TAp63 and p53 in restraining the development of metastatic cancer
E H Tan1, J P Morton1, P Timpson2
1Cancer Research UK Beatson Institute, Glasgow, UK.
Abstract:
Many tumours harbour mutations in the p53 tumour-suppressor gene that result in the expression of a mutant p53 protein. This mutant p53 protein has, in most cases, lost wild-type transcriptional activity and can also acquire novel functions in promoting invasion and metastasis. One of the mechanisms underlying these novel functions involves the ability of the mutant p53 to interfere with other transcription factors, including the p53 family protein TAp63. To investigate whether simultaneous depletion of both p53 and TAp63 can recapitulate the effect of mutant p53 expression in vivo, we used a mouse model of pancreatic cancer in which the expression of mutant p53 resulted in the rapid appearance of primary tumours and metastases. As shown previously, loss of one allele of wild-type (WT) p53 accelerated tumour development. A change of one WT p53 allele into mutant p53 did not further accelerate tumour development, but did promote the formation of metastasis. By contrast, loss of TAp63 did not significantly accelerate tumour development or metastasis. However, simultaneous depletion of p53 and TAp63 led to both rapid tumour development and metastatic potential, although the incidence of metastases remained lower than that seen in mutant p53-expressing tumours. TAp63/p53-null cells derived from these mice also showed an enhanced ability to scatter and invade in tissue culture as was observed in mutant p53 cells. These data suggest that depletion of TAp63 in a p53-null tumour can promote metastasis and recapitulate-to some extent-the consequences of mutant p53 expression.
Insights
Mutant p53 promotes cancer metastasis by interfering with TAp63. Simultaneous loss of p53 and TAp63 in mice mimics some effects of mutant p53, promoting tumor development and metastasis.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Mutations in the p53 tumor-suppressor gene are common in cancers.
- Mutant p53 can gain new functions, promoting tumor invasion and metastasis.
- Mutant p53 may interfere with other transcription factors like TAp63.
Purpose of the Study:
- To investigate if simultaneous p53 and TAp63 depletion mimics mutant p53's pro-metastatic effects in vivo.
- To explore the role of TAp63 in mutant p53-driven pancreatic cancer.
Main Methods:
- Utilized a mouse model of pancreatic cancer with specific p53 and TAp63 genetic alterations.
- Assessed tumor development and metastatic potential in mice with varying p53 and TAp63 statuses.
- Analyzed cell scattering and invasion in vitro for TAp63/p53-null cells.
Main Results:
- Mutant p53 expression accelerated metastasis but not primary tumor development.
- Simultaneous p53 and TAp63 depletion led to rapid tumor development and metastasis.
- TAp63/p53-null cells exhibited increased invasion and scattering in vitro.
- The effects of p53/TAp63 loss partially recapitulated mutant p53-driven metastasis.
Conclusions:
- TAp63 depletion in p53-null tumors can promote metastasis.
- Loss of TAp63 contributes to some of the oncogenic functions of mutant p53.
- Understanding these interactions could reveal new therapeutic strategies for p53-mutated cancers.
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