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Targeting ATR in Cancer Medicine
Carolina Salguero1, Christian Valladolid1, Helen M R Robinson2
1Department of Investigational Cancer Therapeutics (Phase I Program), Division of Cancer Medicine, The University of Texas MD Anderson Cancer Center, Houston, TX, USA.
Abstract:
As a key component of the DNA Damage Response, the Ataxia telangiectasia and Rad3-related (ATR) protein is a promising druggable target that is currently widely evaluated in phase I-II-III clinical trials as monotherapy and in combinations with other rational antitumor agents, including immunotherapy, DNA repair inhibitors, chemo- and radiotherapy. Ongoing clinical studies for this drug class must address the optimization of the therapeutic window to limit overlapping toxicities and refine the target population that will most likely benefit from ATR inhibition. With advances in the development of personalized treatment strategies for patients with advanced solid tumors, many ongoing ATR inhibitor trials have been recruiting patients based on their germline and somatic molecular alterations, rather than relying solely on specific tumor subtypes. Although a spectrum of molecular alterations have already been identified as potential predictive biomarkers of response that may sensitize to ATR inhibition, these biomarkers must be analytically validated and feasible to measure robustly to allow for successful integration into the clinic. While several ATR inhibitors in development are poised to address a clinically unmet need, no ATR inhibitor has yet received FDA-approval. This chapter details the underlying rationale for targeting ATR and summarizes the current preclinical and clinical landscape of ATR inhibitors currently in evaluation, as their regulatory approval potentially lies close in sight.
Insights
Ataxia telangiectasia and Rad3-related (ATR) protein inhibitors are promising cancer drugs in clinical trials. Validating biomarkers is key to optimizing patient selection and therapeutic window for FDA approval.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Ataxia telangiectasia and Rad3-related (ATR) protein is crucial for the DNA Damage Response.
- ATR is a druggable target evaluated in clinical trials for various cancers.
- Current ATR inhibitor trials focus on optimizing therapeutic windows and identifying responsive patient populations.
Purpose of the Study:
- To review the rationale for targeting ATR in cancer therapy.
- To summarize the preclinical and clinical development of ATR inhibitors.
- To discuss the challenges and future directions for ATR inhibitor clinical integration.
Main Methods:
- Review of preclinical data and ongoing clinical trials (Phase I-III).
- Analysis of patient recruitment strategies based on molecular alterations.
- Evaluation of potential predictive biomarkers for ATR inhibition response.
Main Results:
- ATR inhibitors are investigated as monotherapy and in combination regimens.
- Patient selection is increasingly based on germline/somatic molecular alterations.
- Analytical validation of biomarkers is necessary for clinical utility.
Conclusions:
- Several ATR inhibitors show promise for addressing unmet clinical needs in advanced solid tumors.
- Optimization of therapeutic window and robust biomarker validation are critical for clinical success.
- FDA approval for ATR inhibitors may be forthcoming following rigorous evaluation.
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