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Visualizing and Quantifying Endonuclease-Based Site-Specific DNA Damage
Published on: August 21, 2021
Oxidatively induced DNA damage: mechanisms, repair and disease
1Biochemical Science Division, National Institute of Standards and Technology, Gaithersburg, MD 20899, USA. miral@nist.gov
Abstract:
Endogenous and exogenous sources cause oxidatively induced DNA damage in living organisms by a variety of mechanisms. The resulting DNA lesions are mutagenic and, unless repaired, lead to a variety of mutations and consequently to genetic instability, which is a hallmark of cancer. Oxidatively induced DNA damage is repaired in living cells by different pathways that involve a large number of proteins. Unrepaired and accumulated DNA lesions may lead to disease processes including carcinogenesis. Mutations also occur in DNA repair genes, destabilizing the DNA repair system. A majority of cancer cell lines have somatic mutations in their DNA repair genes. In addition, polymorphisms in these genes constitute a risk factor for cancer. In general, defects in DNA repair are associated with cancer. Numerous DNA repair enzymes exist that possess different, but sometimes overlapping substrate specificities for removal of oxidatively induced DNA lesions. In addition to the role of DNA repair in carcinogenesis, recent evidence suggests that some types of tumors possess increased DNA repair capacity that may lead to therapy resistance. DNA repair pathways are drug targets to develop DNA repair inhibitors to increase the efficacy of cancer therapy. Oxidatively induced DNA lesions and DNA repair proteins may serve as potential biomarkers for early detection, cancer risk assessment, prognosis and for monitoring therapy. Taken together, a large body of accumulated evidence suggests that oxidatively induced DNA damage and its repair are important factors in the development of human cancers. Thus this field deserves more research to contribute to the development of cancer biomarkers, DNA repair inhibitors and treatment approaches to better understand and fight cancer.
Insights
Oxidatively induced DNA damage and its repair are critical in cancer development. Understanding these processes can lead to new cancer biomarkers and therapies.
Area of Science:
- Molecular Biology
- Genetics
- Oncology
Background:
- Oxidative stress causes DNA damage, leading to mutations and genetic instability, key factors in cancer.
- DNA repair mechanisms counteract this damage, but defects can promote carcinogenesis.
- Mutations in DNA repair genes and polymorphisms are linked to cancer risk and development.
Purpose of the Study:
- To review the role of oxidatively induced DNA damage and repair in human cancers.
- To highlight the potential of DNA repair pathways as therapeutic targets.
- To explore the use of DNA damage and repair markers for cancer management.
Main Methods:
- Literature review and synthesis of existing research on DNA damage, repair, and cancer.
- Analysis of the implications of DNA repair gene mutations and polymorphisms.
- Discussion of therapeutic strategies targeting DNA repair pathways.
Main Results:
- Oxidatively induced DNA damage is a significant contributor to cancer initiation and progression.
- Deficiencies or alterations in DNA repair systems are strongly associated with cancer.
- Enhanced DNA repair capacity in tumors can confer therapy resistance.
Conclusions:
- Oxidative DNA damage and repair are fundamental to understanding and combating cancer.
- DNA repair inhibitors represent a promising avenue for cancer therapy.
- DNA repair proteins and lesions are valuable biomarkers for cancer detection, risk assessment, and treatment monitoring.
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