Related Experiment Video
Updated: Jul 16, 2026

Visualizing and Quantifying Endonuclease-Based Site-Specific DNA Damage
Published on: August 21, 2021
[DNA repair as a determinant of tumour chemosensitivity]
Shinya Oda1, Isao Kuraoka, Yoshihiko Maehara
1Cancer Genetics Laboratory, Kyushu University.
Abstract:
Differently from target-based anticancer drugs, molecular mechanisms of actions are not well-known in many of the classical antineoplastic agents. With the exception of vinca alkaloids and taxanes, all of the classical antineoplastic agents work on DNA metabolism in cells and can therefore be categorised as 'DNA metabolism inhibitor'. Cellular sensitivity against these drugs largely depends on various activities in DNA metabolism, particularly in DNA repair. However, DNA repair as a determinant of drug sensitivity had long received little attention. DNA mismatch repair (MMR) is now regarded as an important determinant to alter cellular sensitivities against various drugs including fluoropyrimidines, platinum compounds and topoisomerase inhibitors. However, molecular mechanisms of this connection are still unknown. In particular, the relationship between MMR and 5-fluorouraci (l 5-FU) sensitivity is now being approached by examining the tumour MMR status and clinical outcomes in colorectal cancer patients treated with 5-FU-based adjuvant chemotherapies. However, reported results lack consistency, possibly due to the methodological problems in assays used to determine the MMR status. On the other hand, nucleotide excision repair (NER) is also regarded as an important determinant of cisplatin (CDDP) sensitivity. Expression of ERCC 1, a component of this complex multi-protein system, has been reported to be a determinant of prognosis in CDDP-treated non-small-cell lung cancer patients. In order to establish the significance of DNA repair as a determinant of tumour chemosensitivity, further basic studies, particularly ones approached from biochemical viewpoints, are required. Clinical studies supported by accurate assay techniques are also needed.
Insights
DNA repair mechanisms significantly influence cancer drug effectiveness. Understanding DNA mismatch repair (MMR) and nucleotide excision repair (NER) is crucial for predicting patient response to chemotherapy and improving treatment outcomes.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Context:
- Classical anticancer drugs often lack well-defined molecular mechanisms of action.
- Many antineoplastic agents function as DNA metabolism inhibitors.
- Cellular sensitivity to these drugs is heavily influenced by DNA metabolism and repair processes.
Purpose:
- To highlight the underappreciated role of DNA repair in determining anticancer drug sensitivity.
- To explore the known and unknown connections between DNA repair pathways (MMR, NER) and chemotherapy response.
- To emphasize the need for further basic and clinical research, including improved assay techniques.
Summary:
- DNA mismatch repair (MMR) impacts sensitivity to drugs like fluoropyrimidines and platinum compounds, though mechanisms remain unclear.
- Nucleotide excision repair (NER), specifically ERCC 1 expression, is linked to cisplatin sensitivity in non-small-cell lung cancer.
- Inconsistent clinical findings regarding MMR and 5-fluorouracil (5-FU) sensitivity may stem from assay limitations.
Impact:
- Establishes DNA repair as a critical factor in tumor chemosensitivity.
- Suggests potential for refining chemotherapy selection based on DNA repair status.
- Calls for standardized, accurate assays to validate the clinical significance of DNA repair in cancer treatment.
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