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Updated: Jul 5, 2026

Assessment of Global DNA Double-Strand End Resection using BrdU-DNA Labeling coupled with Cell Cycle Discrimination Imaging
Published on: April 28, 2021
DNA repair proteins as molecular targets for cancer therapeutics
Mark R Kelley1, Melissa L Fishel
1Department of Pediatrics, Section of Hematology/Oncology, Herman B. Wells Center for Pediatric Research, Indiana University School of Medicine, 1044 W Walnut St. R4-W302C, Indianapolis, IN 46202, USA. mkelley@iupui.edu
Abstract:
Cancer therapeutics include an ever-increasing array of tools at the disposal of clinicians in their treatment of this disease. However, cancer is a tough opponent in this battle and current treatments which typically include radiotherapy, chemotherapy and surgery are not often enough to rid the patient of his or her cancer. Cancer cells can become resistant to the treatments directed at them and overcoming this drug resistance is an important research focus. Additionally, increasing discussion and research is centering on targeted and individualized therapy. While a number of approaches have undergone intensive and close scrutiny as potential approaches to treat and kill cancer (signaling pathways, multidrug resistance, cell cycle checkpoints, anti-angiogenesis, etc.), much less work has focused on blocking the ability of a cancer cell to recognize and repair the damaged DNA which primarily results from the front line cancer treatments; chemotherapy and radiation. More recent studies on a number of DNA repair targets have produced proof-of-concept results showing that selective targeting of these DNA repair enzymes has the potential to enhance and augment the currently used chemotherapeutic agents and radiation as well as overcoming drug resistance. Some of the targets identified result in the development of effective single-agent anti-tumor molecules. While it is inherently convoluted to think that inhibiting DNA repair processes would be a likely approach to kill cancer cells, careful identification of specific DNA repair proteins is increasingly appearing to be a viable approach in the cancer therapeutic cache.
Insights
Targeting DNA repair mechanisms in cancer cells offers a novel therapeutic strategy. Inhibiting these repair pathways can enhance chemotherapy and radiation effectiveness, potentially overcoming drug resistance.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- Current cancer treatments like chemotherapy and radiotherapy face challenges due to cancer cell drug resistance.
- While targeted therapies are advancing, blocking cancer cells' DNA repair capabilities remains an underexplored area.
- DNA damage repair is crucial for cancer cell survival following conventional treatments.
Purpose of the Study:
- To explore the potential of targeting DNA repair mechanisms as a cancer treatment strategy.
- To investigate whether inhibiting DNA repair can enhance existing cancer therapies and overcome resistance.
- To identify specific DNA repair targets for novel anti-cancer drug development.
Main Methods:
- Review of recent studies focusing on DNA repair targets in cancer.
- Analysis of proof-of-concept results for selective targeting of DNA repair enzymes.
- Evaluation of the potential for both combination therapy and single-agent approaches.
Main Results:
- Selective targeting of DNA repair enzymes shows promise in preclinical studies.
- Inhibiting DNA repair can augment the efficacy of chemotherapy and radiation.
- This approach has the potential to overcome multidrug resistance in cancer cells.
- Some identified targets may lead to effective single-agent anti-tumor therapies.
Conclusions:
- Targeting DNA repair pathways represents a viable and promising strategy in cancer therapy.
- Inhibiting DNA repair can enhance current treatment modalities and combat drug resistance.
- Further research into specific DNA repair proteins could yield novel therapeutic agents.
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