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Recent Advances in the Development of Non-PIKKs Targeting Small Molecule Inhibitors of DNA Double-Strand Break Repair
Jeremy M Kelm1, Amirreza Samarbakhsh1, Athira Pillai1
1Department of Pharmaceutical Sciences, Eugene Applebaum College of Pharmacy and Health Sciences, Wayne State University, Detroit, MI, United States.
Abstract:
The vast majority of cancer patients receive DNA-damaging drugs or ionizing radiation (IR) during their course of treatment, yet the efficacy of these therapies is tempered by DNA repair and DNA damage response (DDR) pathways. Aberrations in DNA repair and the DDR are observed in many cancer subtypes and can promote de novo carcinogenesis, genomic instability, and ensuing resistance to current cancer therapy. Additionally, stalled or collapsed DNA replication forks present a unique challenge to the double-strand DNA break (DSB) repair system. Of the various inducible DNA lesions, DSBs are the most lethal and thus desirable in the setting of cancer treatment. In mammalian cells, DSBs are typically repaired by the error prone non-homologous end joining pathway (NHEJ) or the high-fidelity homology directed repair (HDR) pathway. Targeting DSB repair pathways using small molecular inhibitors offers a promising mechanism to synergize DNA-damaging drugs and IR while selective inhibition of the NHEJ pathway can induce synthetic lethality in HDR-deficient cancer subtypes. Selective inhibitors of the NHEJ pathway and alternative DSB-repair pathways may also see future use in precision genome editing to direct repair of resulting DSBs created by the HDR pathway. In this review, we highlight the recent advances in the development of inhibitors of the non-phosphatidylinositol 3-kinase-related kinases (non-PIKKs) members of the NHEJ, HDR and minor backup SSA and alt-NHEJ DSB-repair pathways. The inhibitors described within this review target the non-PIKKs mediators of DSB repair including Ku70/80, Artemis, DNA Ligase IV, XRCC4, MRN complex, RPA, RAD51, RAD52, ERCC1-XPF, helicases, and DNA polymerase θ. While the DDR PIKKs remain intensely pursued as therapeutic targets, small molecule inhibition of non-PIKKs represents an emerging opportunity in drug discovery that offers considerable potential to impact cancer treatment.
Insights
Targeting DNA repair pathways with small molecule inhibitors can enhance cancer therapy efficacy. This review focuses on inhibitors of non-PIKKs involved in double-strand DNA break repair, offering new avenues for cancer treatment and precision genome editing.
Area of Science:
- Molecular Biology
- Cancer Research
- Drug Discovery
Background:
- DNA repair and DNA damage response (DDR) pathways influence cancer therapy efficacy.
- Aberrations in DNA repair promote cancer development, genomic instability, and treatment resistance.
- Double-strand DNA breaks (DSBs) are critical lesions targeted in cancer therapy.
Purpose of the Study:
- To review recent advances in small molecule inhibitors targeting non-phosphatidylinositol 3-kinase-related kinases (non-PIKKs) involved in DSB repair.
- To explore the potential of these inhibitors in synergizing DNA-damaging therapies and precision genome editing.
Main Methods:
- Review of current literature on inhibitors of non-PIKKs in DSB repair pathways.
- Focus on inhibitors targeting key mediators like Ku70/80, Artemis, DNA Ligase IV, XRCC4, MRN complex, RPA, RAD51, RAD52, ERCC1-XPF, helicases, and DNA polymerase θ.
Main Results:
- Development of small molecule inhibitors targeting non-PIKKs in NHEJ, HDR, SSA, and alt-NHEJ pathways.
- Demonstration of potential for selective NHEJ inhibition to induce synthetic lethality in HDR-deficient cancers.
- Highlighting the role of these inhibitors in enhancing precision genome editing.
Conclusions:
- Small molecule inhibition of non-PIKKs in DSB repair is an emerging and promising strategy in cancer drug discovery.
- These inhibitors offer potential to improve existing cancer therapies and enable advanced genome editing techniques.
- Targeting non-PIKKs presents a significant opportunity beyond the more intensely pursued DDR PIKKs.
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