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Homologous Repair-Deficient Pancreatic Cancer: Refined Targeting of DNA Damage Response is an Effective Therapeutic
Alica K Beutel1,2, Christopher J Halbrook2,3, Menar Ekizce4
1Department of Internal Medicine I, University Hospital Ulm, Ulm, Germany.
Background:
Pancreatic ductal adenocarcinoma (PDAC) is a devastating malignancy with a high mortality rate. While up to 20% of PDAC patients harbor mutations in genes involved in homologous recombination (HR) repair, only 5% of germline BRCA1/2 mutation carriers have an approved treatment option with the PARP inhibitor (PARPi) olaparib. Characterizing HR-deficient (HRD) genotypes beyond gBRCA1/2 that are susceptible to PARPi has potential to substantially broaden the eligible patient population, and defining the optimal inhibitor may further optimize treatment strategies to advance personalized medicine in PDAC.
Objective:
Our previous preclinical work showed synthetic lethality of a multi-pronged DNA damage repair interference strategy using the PARPi olaparib, ATR inhibitor VE-822, and DNA-PK inhibitor CC-115 (termed PAD) in ATM deficiency. In the present study, we challenged the role of olaparib in our PAD combination and assessed the regimen's efficacy across various HRD genotypes.
Methods:
We assessed a spectrum of DNA damage repair-interfering drugs to identify the most potent inhibitor in HRD. Using ATM, BRCA1, BRCA2 and PALB2-defective versus HR-proficient murine PDAC cells, we systematically investigated the feasibility of expanding an optimized PAD regimen within defined HRD genotypes in vitro and in vivo. The regimen's efficacy was validated in PDAC patient-derived organoids with and without deleterious class IV/V alterations in HRD genes.
Results And Conclusion:
Here, we demonstrate a remarkable potency of the PARPi talazoparib in HRD PDAC. Substituting olaparib, currently the only approved inhibitor in PDAC, with talazoparib in our PAD regimen enhanced its efficacy while maintaining comparable tolerability in vivo. Importantly, we show that PAD is an effective therapeutic regimen that can be extended to the most prevalent HR-defective genotypes in PDAC including ATM, BRCA1, BRCA2 and PALB2 in a preclinical setting. Collectively, these data provide a strong rationale to implement the refined regimen, talazoparib-based PAD, as a therapeutic concept tailored for HRD PDAC patients.
Insights
A new talazoparib-based DNA damage repair inhibitor combination shows enhanced efficacy in preclinical models of pancreatic ductal adenocarcinoma (PDAC) with homologous recombination deficiency (HRD). This refined regimen broadens treatment options for HRD PDAC patients beyond BRCA mutations.
Area of Science:
- Oncology
- Genetics
- Pharmacology
Background:
- Pancreatic ductal adenocarcinoma (PDAC) has a high mortality rate, with limited treatment options for patients with homologous recombination deficiency (HRD).
- While PARP inhibitors (PARPi) like olaparib are approved for some HRD genotypes (e.g., germline BRCA1/2), many HRD PDAC patients lack effective therapies.
- Expanding PARPi susceptibility to broader HRD genotypes is crucial for personalized medicine in PDAC.
Purpose of the Study:
- To investigate the efficacy of a multi-pronged DNA damage repair interference strategy (PAD regimen) in various HRD genotypes in PDAC.
- To evaluate talazoparib as a potential replacement for olaparib within the PAD regimen.
- To determine if the optimized PAD regimen can be extended to prevalent HRD genotypes beyond BRCA mutations.
Main Methods:
- Assessed DNA damage repair inhibitors to identify the most potent in HRD.
- Utilized ATM, BRCA1, BRCA2, and PALB2-defective versus HR-proficient murine PDAC cells for in vitro and in vivo studies.
- Validated regimen efficacy in PDAC patient-derived organoids with and without HRD gene alterations.
Main Results:
- Talazoparib demonstrated remarkable potency in HRD PDAC models.
- Substituting olaparib with talazoparib in the PAD regimen enhanced efficacy while maintaining tolerability.
- The PAD regimen proved effective across prevalent HRD genotypes (ATM, BRCA1, BRCA2, PALB2) in preclinical settings.
Conclusions:
- A talazoparib-based PAD regimen offers enhanced efficacy for HRD PDAC.
- This refined strategy expands therapeutic potential to a wider range of HRD genotypes in PDAC.
- The talazoparib-based PAD regimen presents a promising therapeutic concept for personalized medicine in HRD PDAC.
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