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Updated: Jun 27, 2026

Visualizing and Quantifying Endonuclease-Based Site-Specific DNA Damage
Published on: August 21, 2021
DNA damage response pathways in tumor suppression and cancer treatment
Yulong Liang1, Shiaw-Yih Lin, F Charles Brunicardi
1The Michael E. DeBakey Department of Surgery, Baylor College of Medicine, Feigin Center, FC830.29, MC-FC850, 1102 Bates Avenue, Houston, TX 77030, USA.
Abstract:
Mammalian cells are frequently at risk of DNA damage from multiple sources. Accordingly, cells have evolved the DNA damage response (DDR) pathways to monitor the integrity of their genome. Conceptually, DDR pathways contain three major components (some with overlapping functions): sensors, signal transducers, and effectors. At the level of sensors, ATM (ataxia telangiectasia mutated) and ATR (ATM-Rad3-related) are proximal kinases that act as the core sensors of and are central to the entire DDR. These two kinases function to detect various forms of damaged DNA and trigger DNA damage response cascades. If cells harbor DDR defects and fail to repair the damaged DNA, it would cause genomic instability and, as a result, lead to cellular transformation. Indeed, deficiencies of DDR frequently occur in human cancers. Interestingly, this property of cancer also provides a great opportunity for cancer therapy. For example, by using a synthetic lethality model to search for the effective drugs, ChK1 inhibitors have been shown to selectively target the tumor cells with p53 mutations. In addition, the inhibitors of poly(ADP-ribose) polymerase (PARP-1) showed selectively killing effects on the cells with defects of homologous recombination (HR), particularly in the context of BRCA1/2 mutations. Since Brit1 is a key regulator in DDR and HR repair, we believe that we can develop a similar strategy to target cancers with Brit1 deficiency. Currently, we are conducting a high-throughput screening to identify novel compounds that specifically target the Brit1-deficient cancer which will lead to development of effective personalized drugs to cure cancer in clinic.
Insights
Cells possess DNA damage response (DDR) pathways to maintain genome integrity. Researchers are developing targeted cancer therapies by exploiting DDR defects, focusing on Brit1-deficient cancers for personalized treatments.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- Mammalian cells face constant DNA damage threats.
- The DNA damage response (DDR) pathways, involving sensors, transducers, and effectors, are crucial for genome integrity.
- Defects in DDR pathways are common in human cancers, leading to genomic instability and cellular transformation.
Purpose of the Study:
- To explore targeted cancer therapy strategies by leveraging DDR pathway deficiencies.
- To investigate the potential of targeting Brit1-deficient cancers using synthetic lethality principles.
- To identify novel compounds for personalized cancer drug development.
Main Methods:
- Utilizing a synthetic lethality model to discover effective drugs.
- Conducting high-throughput screening (HTS) to identify compounds targeting Brit1-deficient cancer cells.
- Building upon established DDR pathway knowledge, including ATM, ATR, PARP-1, and BRCA1/2.
Main Results:
- Previous research demonstrated ChK1 inhibitors selectively target p53-mutated tumors and PARP-1 inhibitors affect homologous recombination-deficient cells (e.g., BRCA1/2 mutations).
- Brit1 is identified as a key regulator in DDR and homologous recombination repair.
- A high-throughput screening is underway to find compounds targeting Brit1-deficient cancers.
Conclusions:
- Targeting DDR defects presents a promising avenue for cancer therapy.
- Brit1 deficiency offers a potential therapeutic target for developing novel, personalized cancer drugs.
- The ongoing HTS aims to translate these findings into effective clinical treatments for specific cancer types.
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