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Olaparib-Induced Senescence Is Bypassed through G2-M Checkpoint Override in Olaparib-Resistant Prostate Cancer
Alan P Lombard1,2, Cameron M Armstrong1, Leandro S D'Abronzo1
1Department of Urologic Surgery, University of California, Davis, Davis, California.
Abstract:
PARP inhibition represents the dawn of precision medicine for treating prostate cancer. Despite this advance, questions remain regarding the use of PARP inhibitors (PARPi) for the treatment of this disease, including (i) how specifically do PARPi-sensitive tumor cells respond to treatment, and (ii) how does PARPi resistance develop? To address these questions, we characterized response to olaparib in sensitive LNCaP and C4-2B cells and developed two olaparib-resistant derivative cell line models from each, termed LN-OlapR and 2B-OlapR, respectively. OlapR cells possess distinct morphology from parental cells and display robust resistance to olaparib and other clinically relevant PARPis, including rucaparib, niraparib, and talazoparib. In LNCaP and C4-2B cells, we found that olaparib induces massive DNA damage, leading to activation of the G2-M checkpoint, activation of p53, and cell-cycle arrest. Furthermore, our data suggest that G2-M checkpoint activation leads to both cell death and senescence associated with p21 activity. In contrast, both LN-OlapR and 2B-OlapR cells do not arrest at G2-M and display a markedly blunted response to olaparib treatment. Interestingly, both OlapR cell lines harbor increased DNA damage relative to parental cells, suggesting that OlapR cells accumulate and manage persistent DNA damage during acquisition of resistance, likely through augmenting DNA repair capacity. Further impairing DNA repair through CDK1 inhibition enhances DNA damage, induces cell death, and sensitizes OlapR cells to olaparib treatment. Our data together further our understanding of PARPi treatment and provide a cellular platform system for the study of response and resistance to PARP inhibition.
Insights
Poly (ADP-ribose) polymerase (PARP) inhibitors cause DNA damage and cell-cycle arrest in prostate cancer cells. Resistant cells accumulate DNA damage and evade arrest, offering new targets for therapy.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- PARP inhibitors (PARPi) are a key advance in precision medicine for prostate cancer.
- Understanding PARPi response and resistance mechanisms is crucial for optimizing treatment.
Purpose of the Study:
- To investigate how PARPi-sensitive prostate cancer cells respond to olaparib.
- To develop and characterize PARPi-resistant cell line models.
- To elucidate mechanisms of PARPi resistance.
Main Methods:
- Characterized olaparib response in LNCaP and C4-2B cells.
- Developed and analyzed two resistant cell lines (LN-OlapR, 2B-OlapR).
- Assessed cell morphology, drug resistance, DNA damage, and cell-cycle progression.
Main Results:
- Olaparib induced DNA damage, G2-M arrest, and cell death/senescence in sensitive cells.
- Resistant cells showed distinct morphology, blunted G2-M arrest, and increased DNA damage.
- Resistant cells likely manage persistent DNA damage via enhanced repair capacity.
- CDK1 inhibition sensitized resistant cells to olaparib by increasing DNA damage.
Conclusions:
- PARPi treatment induces distinct cellular responses in sensitive prostate cancer cells.
- Acquired resistance involves altered DNA damage response and repair.
- Targeting DNA repair pathways, like CDK1, may overcome PARPi resistance.
- Developed cellular models provide a platform for studying PARPi response and resistance.
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