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ATM and ATR as therapeutic targets in cancer
Anika Maria Weber1, Anderson Joseph Ryan1
1Cancer Research UK and Medical Research Council Oxford Institute for Radiation Oncology, The Department of Oncology, University of Oxford, Oxford OX3 7DQ, UK.
Abstract:
In order to maintain genomic stability, cells have developed sophisticated signalling pathways to enable DNA damage or DNA replication stress to be resolved. Key mediators of this DNA damage response (DDR) are the ATM and ATR kinases, which induce cell cycle arrest and facilitate DNA repair via their downstream targets. Inhibiting the DDR has become an attractive therapeutic concept in cancer therapy, since (i) resistance to genotoxic therapies has been associated with increased DDR signalling, and (ii) many cancers have defects in certain components of the DDR rendering them highly dependent on the remaining DDR pathways for survival. ATM and ATR act as the apical regulators of the response to DNA double strand breaks and replication stress, respectively, with overlapping but non-redundant activities. Highly selective small molecule inhibitors of ATM and ATR are currently in preclinical and clinical development, respectively. Preclinical data have provided a strong rationale for clinical testing of these compounds both in combination with radio- or chemotherapy, and in synthetic lethal approaches to treat tumours with deficiencies in certain DDR components. Whole genome sequencing studies have reported that mutations in DDR genes occur with a high frequency in many common tumour types, suggesting that a synthetic lethal approach with ATM or ATR inhibitors could have widespread utility, providing that appropriate biomarkers are developed.
Insights
Targeting DNA damage response (DDR) pathways, specifically ATM and ATR kinases, offers a promising cancer therapy strategy. Inhibiting these key mediators exploits cancer cell dependencies for improved treatment outcomes.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- Genomic stability is maintained by DNA damage response (DDR) pathways.
- ATM and ATR kinases are crucial mediators of the DDR, controlling cell cycle arrest and DNA repair.
- Cancer cells often exhibit defects in DDR, making them reliant on remaining pathways.
Purpose of the Study:
- To explore the therapeutic potential of inhibiting ATM and ATR kinases in cancer treatment.
- To evaluate the rationale for clinical testing of ATM and ATR inhibitors.
- To investigate the utility of synthetic lethal approaches targeting DDR-deficient tumors.
Main Methods:
- Review of preclinical and clinical development of ATM and ATR inhibitors.
- Analysis of whole genome sequencing data for DDR gene mutations in tumors.
- Assessment of combination therapies and synthetic lethality strategies.
Main Results:
- ATM and ATR inhibitors are in development for cancer therapy.
- Preclinical data support clinical trials of these inhibitors.
- High frequency of DDR gene mutations in common tumors suggests broad utility for synthetic lethality.
Conclusions:
- Inhibiting ATM and ATR is a viable therapeutic strategy for cancer.
- Synthetic lethal approaches with ATM or ATR inhibitors could be widely applicable.
- Development of appropriate biomarkers is essential for targeted therapies.
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