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Updated: Jan 29, 2026

Pre-clinical Evaluation of Tyrosine Kinase Inhibitors for Treatment of Acute Leukemia
Published on: September 18, 2013
Recent advances in small molecule ATR kinase inhibitors as anticancer agents
Gurpreet Singh1, Ram Sharma2, Vinod Gautam3
1Department of Pharmaceutical Chemistry, ISF College of Pharmacy, Moga, India.
Abstract:
Ataxia telangiectasia and Rad3-related (ATR) kinase is a crucial regulator of the DNA damage response, supporting replication fork stability, enforcing cell-cycle checkpoints, and coordinating repair mechanisms. Tumor cells, which often experience oncogene-induced replication stress, rely more heavily on ATR signaling, presenting a potential therapeutic target for anticancer drug discovery and development. Over the last decade, intensive medicinal chemistry efforts have generated a broad pipeline of ATR inhibitors, including ceralasertib, elimusertib, camonsertib, berzosertib, ART0380, and gartisertib, many of which are in Phase I/II clinical trials. These compounds effectively disrupt checkpoints, induce replication catastrophe, and work synergistically with PARP inhibitors, topoisomerase poisons, platinum-based chemotherapies, radiotherapy, and immunotherapy. Although promising, challenges such as hematologic toxicities and resistance mechanisms persist. Future research aims to improve patient selection through biomarkers like replication-stress signatures, RAD51 foci tests, and liquid biopsy DNA damage markers; develop advanced modalities including brain-penetrant scaffolds, PROTAC degraders, and dual ATR/PARP or ATR/HDAC inhibitors; and optimize intermittent dosing to expand therapeutic windows. Incorporating these strategies into adaptive platform trials with pharmacodynamic markers and patient-centered outcomes will speed up translation. Overall, ATR inhibitors highlight progress in DNA damage response therapies, from understanding mechanisms to biomarker-driven clinical use, with the potential to revolutionize treatment across various cancers.
Insights
Ataxia telangiectasia and Rad3-related (ATR) kinase inhibitors show promise in cancer therapy by disrupting DNA damage response pathways. Ongoing research focuses on overcoming toxicity and resistance for improved patient outcomes.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Ataxia telangiectasia and Rad3-related (ATR) kinase is vital for DNA damage response, replication fork stability, and cell-cycle checkpoints.
- Cancer cells often exhibit increased reliance on ATR signaling due to oncogene-induced replication stress, making it a therapeutic target.
Purpose of the Study:
- To review the development and therapeutic potential of ATR inhibitors in cancer treatment.
- To discuss challenges, future directions, and clinical translation strategies for ATR inhibitors.
Main Methods:
- Review of medicinal chemistry efforts and clinical trial data for various ATR inhibitors (ceralasetib, elimusertib, camonsertib, berzosertib, ART0380, gartisertib).
- Analysis of synergistic effects with other cancer therapies and identification of resistance mechanisms and toxicities.
Main Results:
- Numerous ATR inhibitors have advanced to clinical trials, demonstrating efficacy in disrupting checkpoints and inducing cancer cell death.
- Combinations with PARP inhibitors, chemotherapy, radiotherapy, and immunotherapy show synergistic potential.
- Hematologic toxicities and resistance mechanisms remain significant challenges.
Conclusions:
- ATR inhibitors represent a significant advancement in DNA damage response-targeted cancer therapy.
- Future strategies include biomarker-driven patient selection, novel drug modalities, and optimized dosing.
- Adaptive platform trials are crucial for accelerating clinical translation and revolutionizing cancer treatment.
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