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Updated: Mar 25, 2026

Characterizing DNA Repair Processes at Transient and Long-lasting Double-strand DNA Breaks by Immunofluorescence Microscopy
Published on: June 8, 2018
Cancer TARGETases: DSB repair as a pharmacological target
Pounami Samadder1, Rakesh Aithal2, Ondrej Belan3
1National Centre for Biomolecular Research, Masaryk University, 62500 Brno, Czech Republic; International Clinical Research Center, Center for Biomolecular and Cellular Engineering, St. Anne's University Hospital in Brno, 60200 Brno, Czech Republic.
Abstract:
Cancer is a disease attributed to the accumulation of DNA damages due to incapacitation of DNA repair pathways resulting in genomic instability and a mutator phenotype. Among the DNA lesions, double stranded breaks (DSBs) are the most toxic forms of DNA damage which may arise as a result of extrinsic DNA damaging agents or intrinsic replication stress in fast proliferating cancer cells. Accurate repair of DSBs is therefore paramount to the cell survival, and several classes of proteins such as kinases, nucleases, helicases or core recombinational proteins have pre-defined jobs in precise execution of DSB repair pathways. On one hand, the proper functioning of these proteins ensures maintenance of genomic stability in normal cells, and on the other hand results in resistance to various drugs employed in cancer therapy and therefore presents a suitable opportunity for therapeutic targeting. Higher relapse and resistance in cancer patients due to non-specific, cytotoxic therapies is an alarming situation and it is becoming more evident to employ personalized treatment based on the genetic landscape of the cancer cells. For the success of personalized treatment, it is of immense importance to identify more suitable targetable proteins in DSB repair pathways and also to explore new synthetic lethal interactions with these pathways. Here we review the various alternative approaches to target the various protein classes termed as cancer TARGETases in DSB repair pathway to obtain more beneficial and selective therapy.
Insights
Targeting DNA double-strand break (DSB) repair pathways offers a promising strategy for cancer therapy. Identifying specific cancer TARGETases and synthetic lethal interactions can lead to more effective and personalized cancer treatments.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- Cancer arises from accumulated DNA damage and impaired DNA repair, leading to genomic instability.
- Double-strand breaks (DSBs) are highly toxic DNA lesions critical for cancer cell survival and therapy resistance.
Purpose of the Study:
- To review alternative approaches for targeting proteins involved in DSB repair pathways.
- To identify novel therapeutic targets and synthetic lethal interactions within DSB repair for selective cancer therapy.
Main Methods:
- Review of scientific literature on DNA double-strand break repair mechanisms.
- Analysis of protein classes (kinases, nucleases, helicases, recombinational proteins) involved in DSB repair.
- Exploration of synthetic lethality principles in cancer treatment.
Main Results:
- DSB repair proteins are crucial for maintaining genomic stability in normal cells.
- Dysfunctional DSB repair pathways contribute to cancer drug resistance.
- Targeting DSB repair proteins presents an opportunity for developing selective cancer therapies.
Conclusions:
- Personalized cancer treatment requires understanding the genetic landscape and targeting specific pathways.
- Identifying and targeting 'cancer TARGETases' in DSB repair can enhance therapeutic efficacy and selectivity.
- Exploring synthetic lethal interactions with DSB repair pathways is key for future cancer drug development.
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