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PARP and PARG inhibitors in cancer treatment
1Department of Biochemistry, Max Perutz Labs, Vienna Biocenter (VBC), University of Vienna, 1030 Vienna, Austria.
Abstract:
Oxidative and replication stress underlie genomic instability of cancer cells. Amplifying genomic instability through radiotherapy and chemotherapy has been a powerful but nonselective means of killing cancer cells. Precision medicine has revolutionized cancer therapy by putting forth the concept of selective targeting of cancer cells. Poly(ADP-ribose) polymerase (PARP) inhibitors represent a successful example of precision medicine as the first drugs targeting DNA damage response to have entered the clinic. PARP inhibitors act through synthetic lethality with mutations in DNA repair genes and were approved for the treatment of BRCA mutated ovarian and breast cancer. PARP inhibitors destabilize replication forks through PARP DNA entrapment and induce cell death through replication stress-induced mitotic catastrophe. Inhibitors of poly(ADP-ribose) glycohydrolase (PARG) exploit and exacerbate replication deficiencies of cancer cells and may complement PARP inhibitors in targeting a broad range of cancer types with different sources of genomic instability. Here I provide an overview of the molecular mechanisms and cellular consequences of PARP and PARG inhibition. I highlight clinical performance of four PARP inhibitors used in cancer therapy (olaparib, rucaparib, niraparib, and talazoparib) and discuss the predictive biomarkers of inhibitor sensitivity, mechanisms of resistance as well as the means of overcoming them through combination therapy.
Insights
Poly(ADP-ribose) polymerase (PARP) inhibitors target cancer cell DNA repair defects for precision therapy. Poly(ADP-ribose) glycohydrolase (PARG) inhibitors may complement PARP inhibitors for broader cancer treatment.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Genomic instability in cancer cells is driven by oxidative and replication stress.
- Radiotherapy and chemotherapy amplify genomic instability but lack selectivity.
- Precision medicine aims to selectively target cancer cells, revolutionizing therapy.
Purpose of the Study:
- To provide an overview of PARP and PARG inhibition mechanisms and cellular consequences.
- To highlight the clinical performance of approved PARP inhibitors.
- To discuss predictive biomarkers, resistance mechanisms, and combination therapies for PARP inhibitors.
Main Methods:
- Review of molecular mechanisms of PARP and PARG inhibition.
- Analysis of clinical data for four PARP inhibitors (olaparib, rucaparib, niraparib, talazoparib).
- Discussion of predictive biomarkers, resistance, and combination strategies.
Main Results:
- PARP inhibitors induce synthetic lethality in cancers with DNA repair gene mutations (e.g., BRCA).
- PARP inhibitors destabilize replication forks and cause mitotic catastrophe.
- PARG inhibitors may complement PARP inhibitors by exploiting replication deficiencies.
Conclusions:
- PARP inhibitors are a successful precision medicine strategy for BRCA-mutated cancers.
- PARG inhibitors offer potential for broader application in cancers with genomic instability.
- Understanding resistance mechanisms and employing combination therapies are crucial for optimizing treatment outcomes.
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