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Published on: January 31, 2018
Small-molecule inhibitors of APE1 DNA repair function: an overview
Rasha I Al-Safi1, Srinivas Odde, Yumna Shabaik
1Department of Pharmacology and Pharmaceutical Sciences, University of Southern California, School of Pharmacy, 1985 Zonal Avenue, Los Angeles, CA 90089, USA.
Abstract:
APE1 is a multifaceted protein that orchestrates multiple activities in the cell, one of which is the preservation of genomic integrity; a vital process that takes place in the context of the base excision repair (BER) pathway. Studies have implicated APE1 in rendering cancerous cells less vulnerable to the effects of DNA-damaging agents that are commonly used for the treatment of cancer. Furthermore, suppression of APE1 expression in cancer cell lines is accompanied by the potentiation of the activity of cytotoxic agents. As a result, major efforts have been directed towards the identification of small-molecule inhibitors of this DNA-repair enzyme. Herein, we review all patented small-molecule APE1 inhibitors reported prior to 2011. Unfortunately, the potency and selectivity of many of the reported inhibitors were not disclosed by the original authors, and at present it is unclear if APE1 is a bona fide target for many of the purported inhibitors. Moreover, cellular activity and toxicity of many inhibitors remain to be established. Since this is the first comprehensive review of small molecule APE1 inhibitors, we present all compounds reported to inhibit APE1 activity with an IC50 value ≤ 25 μM. Efforts towards a careful validation and optimization of these compounds are warranted. Furthermore, we explore potential allosteric drug-binding sites on the protein as an alternative approach for modulating the activity of this multifunctional protein. In addition, we give an overview of APE2, as well as other APE1 homologues in some disease-causing pathogens. Finally, given the universal importance of DNA repair, as well as the considerable conservation of repair proteins across all living organisms, we propose targeting the AP endonuclease activity of pathogens by the compounds discussed in this review, thereby expanding their therapeutic potential and application.
Insights
This review covers patented small-molecule inhibitors of APE1, a DNA repair enzyme implicated in cancer resistance. Further validation is needed to optimize these compounds for therapeutic use.
Area of Science:
- Biochemistry
- Molecular Biology
- Genetics
Background:
- The protein APE1 is crucial for genomic integrity via the base excision repair (BER) pathway.
- APE1 activity in cancer cells can reduce their vulnerability to DNA-damaging chemotherapy agents.
- Inhibiting APE1 shows potential for enhancing the efficacy of cancer treatments.
Purpose of the Study:
- To review all patented small-molecule APE1 inhibitors reported before 2011.
- To assess the potency and selectivity of these inhibitors.
- To explore alternative strategies like allosteric inhibition and targeting pathogen homologues.
Main Methods:
- Comprehensive literature review of patented small-molecule APE1 inhibitors.
- Analysis of reported IC50 values (≤ 25 μM) for APE1 inhibition.
- Exploration of potential allosteric sites and APE1 homologues in pathogens.
Main Results:
- Identified numerous patented small-molecule APE1 inhibitors reported prior to 2011.
- Noted that potency, selectivity, cellular activity, and toxicity data are often missing for many inhibitors.
- Presented compounds with IC50 values ≤ 25 μM, highlighting the need for further validation.
Conclusions:
- Significant efforts are underway to develop APE1 inhibitors for cancer therapy.
- Further research is essential to validate and optimize existing APE1 inhibitors.
- Targeting APE1 homologues in pathogens presents a novel therapeutic avenue.
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