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Therapeutic applications of PARP inhibitors: anticancer therapy and beyond
1Newcastle University, Northern Institute for Cancer Research, Medical School, University of Newcastle Upon Tyne NE2 4HH, UK.
Abstract:
The aim of this article is to describe the current and potential clinical translation of pharmacological inhibitors of poly(ADP-ribose) polymerase (PARP) for the therapy of various diseases. The first section of the present review summarizes the available preclinical and clinical data with PARP inhibitors in various forms of cancer. In this context, the role of PARP in single-strand DNA break repair is relevant, leading to replication-associated lesions that cannot be repaired if homologous recombination repair (HRR) is defective, and the synthetic lethality of PARP inhibitors in HRR-defective cancer. HRR defects are classically associated with BRCA1 and 2 mutations associated with familial breast and ovarian cancer, but there may be many other causes of HRR defects. Thus, PARP inhibitors may be the drugs of choice for BRCA mutant breast and ovarian cancers, and extend beyond these tumors if appropriate biomarkers can be developed to identify HRR defects. Multiple lines of preclinical data demonstrate that PARP inhibition increases cytotoxicity and tumor growth delay in combination with temozolomide, topoisomerase inhibitors and ionizing radiation. Both single agent and combination clinical trials are underway. The final part of the first section of the present review summarizes the current status of the various PARP inhibitors that are in various stages of clinical development. The second section of the present review summarizes the role of PARP in selected non-oncologic indications. In a number of severe, acute diseases (such as stroke, neurotrauma, circulatory shock and acute myocardial infarction) the clinical translatability of PARP inhibition is supported by multiple lines of preclinical data, as well as observational data demonstrating PARP activation in human tissue samples. In these disease indications, PARP overactivation due to oxidative and nitrative stress drives cell necrosis and pro-inflammatory gene expression, which contributes to disease pathology. Accordingly, multiple lines of preclinical data indicate the efficacy of PARP inhibitors to preserve viable tissue and to down-regulate inflammatory responses. As the clinical trials with PARP inhibitors in various forms of cancer progress, it is hoped that a second line of clinical investigations, aimed at testing of PARP inhibitors for various non-oncologic indications, will be initiated, as well.
Insights
Poly(ADP-ribose) polymerase (PARP) inhibitors show promise in treating cancers with DNA repair defects, particularly BRCA-mutated breast and ovarian cancers. They also demonstrate potential in acute non-oncologic conditions by reducing inflammation and cell death.
Area of Science:
- Pharmacology and Therapeutics
- Oncology
- Molecular Biology
Background:
- Poly(ADP-ribose) polymerase (PARP) plays a crucial role in DNA repair, particularly single-strand break repair.
- Defects in homologous recombination repair (HRR), often associated with BRCA1/2 mutations, create synthetic lethality with PARP inhibition in cancer cells.
- PARP activation is also implicated in the pathology of acute non-oncologic diseases due to oxidative stress.
Purpose of the Study:
- To review the clinical translation of poly(ADP-ribose) polymerase (PARP) inhibitors for cancer therapy.
- To explore the potential of PARP inhibitors in non-oncologic indications.
- To summarize preclinical and clinical data on PARP inhibitors.
Main Methods:
- Review of preclinical and clinical data for PARP inhibitors in various cancers.
- Analysis of the role of PARP in DNA repair mechanisms and synthetic lethality.
- Examination of preclinical data and observational studies in non-oncologic diseases.
Main Results:
- PARP inhibitors are effective in HRR-defective cancers, including BRCA-mutated breast and ovarian cancers.
- Combinations of PARP inhibitors with chemotherapy (e.g., temozolomide) and radiation show enhanced anti-tumor effects.
- Preclinical data suggest PARP inhibitors can mitigate tissue damage and inflammation in acute conditions like stroke and myocardial infarction.
Conclusions:
- PARP inhibitors represent a significant therapeutic advance for specific cancer types and hold potential for broader oncologic applications with biomarker development.
- PARP inhibition shows promise for treating acute non-oncologic diseases by targeting overactivation-driven necrosis and inflammation.
- Further clinical trials are warranted to establish the efficacy of PARP inhibitors in both oncologic and non-oncologic settings.
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