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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
p53 in breast cancer subtypes and new insights into response to chemotherapy
Philippe Bertheau1, Jacqueline Lehmann-Che, Mariana Varna
1Department of Pathology, Hospital Saint-Louis, APHP, University Paris Diderot, INSERM U728, Paris, France.
Abstract:
Despite an obvious central role of p53 in the hallmarks of cancer, TP53 status is not yet used for the management of breast cancer. Recent findings may lead to reconsider the role of p53 in breast cancer. TP53 mutations are the most frequent genetic alterations in breast cancer, observed in 30% of breast carcinomas. Their distribution is highly linked to molecular tumor subtypes found in 26% of luminal tumors (17% of luminal A, 41% of luminal B), in 50% of HER2 amplified tumors, in 69% of molecular apocrine breast carcinomas and in 88% of basal-like carcinomas. The type of mutation is linked to the tumor subtype with higher frequency of base-pair substitutions in luminal tumors, whereas molecular apocrine and basal-like tumors present much higher frequency of complex mutations (deletions/insertions). The timing of TP53 mutation also depends on the tumor subtype, being the first important event in luminal tumors but occurring after PTEN loss in basal-like tumors. Regarding response to cytotoxic chemotherapy, the situation is far from the p53-dependent apoptosis paradigm with subsequent clinical response. We reported that TP53 mutated non inflammatory locally advanced breast carcinomas had a high rate of complete pathological response to dose-dense doxorubicin-cyclophosphamide chemotherapy, while TP53 wild-type (WT) tumors never achieved complete response. Using human breast cancer xenograft models, we suggested that this could be due to the induction of senescence in TP53 WT tumor cells. A recent work confirmed these findings in MMTV-Wnt1 mammary tumors, showing that growth arrest and senescent phenotype, not apoptosis, were induced in TP53 WT tumors following doxorubicin treatment, while lack of arrest in mutant tumors resulted in aberrant mitoses, cell death and a superior clinical response. Furthermore, in ER positive (ER(+)) breast tumors, it has been recently reported that ER represses the p53-mediated apoptotic response induced by DNA damage. Taken together, these data can help to better understand p53-mediated response to doxorubicin-based chemotherapy in breast cancer: in ER(+) TP53 WT breast cancers, ER-induced inhibition of p53 apoptotic response would lead preferentially to tumor cell senescence and subsequent resistance to treatment. Conversely, in ER negative (ER(-)) TP53 mutated breast cancers, accumulation of genetic abnormalities would lead to mitotic catastrophe and subsequent better response. In view of these recent results, p53 impact in breast cancer should be reconsidered.
Insights
TP53 mutations are common in breast cancer and linked to subtypes. Wild-type TP53 tumors may resist chemotherapy by entering senescence, unlike TP53-mutated tumors which respond better.
Area of Science:
- Oncology
- Genetics
- Molecular Biology
Background:
- TP53 mutations are frequent in breast cancer, occurring in 30% of carcinomas.
- Mutation distribution and type vary significantly across molecular tumor subtypes (luminal, HER2-amplified, apocrine, basal-like).
- The timing of TP53 mutation also differs by subtype, influencing tumor development.
Purpose of the Study:
- To re-evaluate the role of p53 status in breast cancer management and chemotherapy response.
- To investigate the differential response of TP53-mutated versus wild-type (WT) tumors to doxorubicin-cyclophosphamide chemotherapy.
- To elucidate the mechanisms underlying treatment response, including apoptosis and senescence.
Main Methods:
- Analysis of TP53 mutation frequency and type across diverse breast cancer molecular subtypes.
- Evaluation of pathological complete response rates to dose-dense doxorubicin-cyclophosphamide chemotherapy in TP53-mutated and WT locally advanced breast carcinomas.
- Utilizing human breast cancer xenograft models and MMTV-Wnt1 mammary tumor models to study treatment response mechanisms.
- Investigating the influence of estrogen receptor (ER) status on p53-mediated apoptotic response to DNA damage.
Main Results:
- TP53-mutated non-inflammatory locally advanced breast carcinomas showed a high rate of complete pathological response to chemotherapy.
- TP53 WT tumors rarely achieved complete response, with evidence suggesting induction of senescence rather than apoptosis.
- In ER-positive breast tumors, estrogen receptor represses p53-mediated apoptosis, potentially leading to treatment resistance.
- ER-negative TP53-mutated breast cancers may exhibit better response due to increased sensitivity to DNA damage-induced cell death.
Conclusions:
- TP53 status and its interaction with ER signaling significantly influence breast cancer response to chemotherapy.
- The p53-dependent apoptosis paradigm is insufficient to explain chemotherapy response; senescence plays a critical role in TP53 WT tumors.
- These findings necessitate a reconsideration of p53's impact on breast cancer treatment strategies.
- Targeting or understanding these p53-driven mechanisms could lead to improved therapeutic approaches for breast cancer.
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