AR-DDR · Co-targeting androgen receptor signalling and DNA damage repair for precision therapy in advanced prostate cancer
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2019-05-01 → 2021-07-21
- EU contribution
- €172,932
- Participants
- 1
- Scheme
- MSCA-IF-EF-ST
Lines connect the coordinator with its partners.
Results in brief
Co-targeting androgen receptor signalling and DNA damage repair for precision therapy in advanced prostate cancer
Prostate cancer is the 2nd most common cancer type in the western world, and the most prevalent in men. When the disease spreads to other organs, metastatic prostate cancer is an invariably lethal disease. Prostate cancer is addicted to androgen signalling; chemical castration, typically with LHRH agonists, induces dramatic cancer regression. However metastatic prostate cancer eventually finds a way to overcome the effect of castration, a condition known as castration-resistant prostate cancer (CRPC)1. Until now, all CRPC are treated as one disease, with drugs targeting the AR pathway and/or taxane-based chemotherapy. Recently, studies by the researcher and others have described the genomic landscape of CRPC and the DNA damage repair (DDR) pathway has been postulated as a suitable therapeutic target, as 20-25% CRPC harbour defects in genes involved in DDR genes. These data have paved the way for the development of precision medicine strategies in prostate cancer, tailoring the treatment for each individual patient according to the genomic make up of each tumor. In particular, PARP inhibitors, a family of drugs that target enzymes involved in the single strand DNA break repair, have been found to be effective in some men with prostate cancer harbouring these mutations. These drugs, which were previously approved in certain subtypes of breast and ovarian cancer, may represent the first precision treatment for prostate cancer. Several preclinical studies have identified a cross-regulation between the androgen receptor signalling pathway and the DDR pathway, leading to clinical trials targeting both pathways simultaneously. However, the exact mechanisms mediating this cross-talk are unclear. In this project, the researcher aims to further elucidate the mechanisms underlying AR-DDR cross-regulation, in order to design optimal combinatory therapy approaches. Moreover, the researcher will specifically focus in ATM mutations, one of the most common DDR defects in prostate cancer, as a model for identifying therapeutic vulnerabilities in these tumors. The overall objectives of the project are: • Obj1: To assess the impact of ATM mutations in DDR function, transcriptional regulation and sensitivity to different drugs targeting the DDR pathway, using prostate cancer models with different biological backgrounds. • Obj2: To explore potential tumour vulnerabilities based on the identification of overlapping functions for AR and DDR proteins. • Obj3: To study in patients biopsies how exposure to a drug targeting AR actually may result in modulating the effect of DDR proteins, creating new vulnerabilities and paving the way for combination therapies.
Data: CORDIS, © European Union
Project objective
Prostate cancer is the 2nd most common cancer in the western world. The advanced stage, metastatic castration-resistant prostate cancer (mCRPC), is a lethal disease. Understanding inter-patient genomic heterogeneity renders the opportunity to advance towards personalised patient care. Prostate cancer is a disease primarily driven by the androgen receptor (AR) pathway; however, the applicant prior work contributed to identifying 1) that up to 25% of mCRPC harbour defects in DNA damage repair (DDR) genes, and 2) that some of these mCPRC patients with DDR defects are sensitive to targeted treatment with PARP inhibitors. In the proposed research plan, we aim to exploit the cross-regulation between AR and DDR pathways to optimize precise therapeutic options for mCRPC patients. To achieve the objectives, the applicant will use models generated at the host through CRISRP/Cas9 to pursue functional studies and characterise how defects in ATM impact DDR function and sensitivity to inhibitors of PARP, ATR and DNA-PK. We hypothesize such sensitivity would be modulated by co-targeting of the AR pathway and by second events such as TP53 loss-of-function. ChIP-Seq assays will be pursued to identify genes co-regulated by the androgen receptor and PARP-1, to identify potential synthetic vulnerabilities. Then, mCRPC patient’s biopsies acquired in clinical practice from patients receiving AR-targeting therapies will be used to study how AR inhibition modulate transcriptional regulation of DDR pathways, to inform the optimal design of combination therapies. These data would be correlated with genomics and immunofluorescence tests of homologous recombination function, in order to refine patient stratification in the clinic. The proposed research will be conducted in parallel to a personalised training and career development plans, designed for the applicant to achieve a position of academic independence as physician-scientist before the end of the fellowship at the host institute.
Original text from CORDIS.
Participants
- FUNDACIO PRIVADA INSTITUT D'INVESTIGACIO ONCOLOGICA DE VALL-HEBRON (VHIO) · BarcelonaCoordinatorSpain
Links
- View on CORDIS
- DOI: 10.3030/837900
- http://www.vhio.net/en/prostate-cancer-translational-research-group/
Data: CORDIS, © European Union
