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Published on: July 17, 2020
Vulnerabilities of PTEN-TP53-deficient prostate cancers to compound PARP-PI3K inhibition
Enrique González-Billalabeitia1, Nina Seitzer2, Su Jung Song2
1Cancer Research Institute, Beth Israel Deaconess Cancer Center, Department of Medicine and Pathology, Beth Israel Deaconess Medical Center, Harvard Medical School; Department of Medicine; Divisions of On leave of absence: Servicio de Hematología y Oncología Médica, Hospital Universitario Morales Meseguer, Murcia, Spain.
Unlabelled:
Prostate cancer is the most prevalent cancer in males, and treatment options are limited for advanced forms of the disease. Loss of the PTEN and TP53 tumor suppressor genes is commonly observed in prostate cancer, whereas their compound loss is often observed in advanced prostate cancer. Here, we show that PARP inhibition triggers a p53-dependent cellular senescence in a PTEN-deficient setting in the prostate. Surprisingly, we also find that PARP-induced cellular senescence is morphed into an apoptotic response upon compound loss of PTEN and p53. We further show that superactivation of the prosurvival PI3K-AKT signaling pathway limits the efficacy of a PARP single-agent treatment, and that PARP and PI3K inhibitors effectively synergize to suppress tumorigenesis in human prostate cancer cell lines and in a Pten/Trp53-deficient mouse model of advanced prostate cancer. Our findings, therefore, identify a combinatorial treatment with PARP and PI3K inhibitors as an effective option for PTEN-deficient prostate cancer.
Significance:
The paucity of therapeutic options in advanced prostate cancer displays an urgent need for the preclinical assessment of novel therapeutic strategies. We identified differential therapeutic vulnerabilities that emerge upon the loss of both PTEN and p53, and observed that combined inhibition of PARP and PI3K provides increased efficacy in hormone-insensitive advanced prostate cancer.
Insights
PARP inhibition causes cell death in PTEN-deficient prostate cancer. Combining PARP and PI3K inhibitors effectively suppresses advanced prostate cancer, offering a new treatment strategy.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Prostate cancer is a leading cancer in males with limited advanced treatment options.
- Loss of PTEN and TP53 tumor suppressors is common, especially in advanced prostate cancer.
Purpose of the Study:
- To investigate the effects of PARP inhibition in PTEN-deficient prostate cancer.
- To explore therapeutic strategies for advanced prostate cancer with combined PTEN and TP53 loss.
Main Methods:
- Utilized PARP inhibitors in PTEN-deficient prostate cancer models.
- Investigated the role of p53 in PARP inhibitor response.
- Examined the impact of combined PTEN and p53 loss on cellular response.
- Assessed the efficacy of combined PARP and PI3K inhibitors in vitro and in vivo.
Main Results:
- PARP inhibition induced p53-dependent senescence in PTEN-deficient prostate cancer.
- Combined loss of PTEN and p53 shifted PARP-induced senescence to apoptosis.
- PI3K-AKT pathway activation limited PARP inhibitor efficacy.
- Combined PARP and PI3K inhibitors synergistically suppressed tumor growth in models of advanced prostate cancer.
Conclusions:
- Combined PARP and PI3K inhibition is a promising therapeutic strategy for PTEN-deficient advanced prostate cancer.
- Identified distinct vulnerabilities in prostate cancer with combined PTEN and p53 loss.
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