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DNA Damage Response Assessments in Human Tumor Samples Provide Functional Biomarkers of Radiosensitivity
Henning Willers1, Liliana Gheorghiu1, Qi Liu1
1Department of Radiation Oncology, Massachusetts General Hospital, Boston, MA.
Abstract:
Predictive biomarkers are urgently needed for individualization of radiation therapy and treatment with radiosensitizing anticancer agents. Genomic profiling of human cancers provides us with unprecedented insight into the mutational landscape of genes directly or indirectly involved in the response to radiation-induced DNA damage. However, to what extent this wealth of structural information about the cancer genome produces biomarkers of sensitivity to radiation remains to be seen. Investigators are increasingly studying the subnuclear accumulation (ie, foci) of proteins in the DNA damage response (DDR), such as gamma-H2AX, 53BP1, or RAD51, as a surrogate of treatment sensitivity. Recent findings from preclinical studies have demonstrated the predictive potential of DDR foci by correlating foci with clinically relevant end points such as tumor control probability. Therefore, preclinical investigations of DDR foci responses are increasingly moving into cells and tissues from patients, which is the major focus of this review. The advantage of using DDR foci as functional biomarkers is that they can detect alterations in DNA repair due to various mechanisms. Moreover, they provide a global measurement of DDR network function without needing to know the identities of all the components, many of which remain unknown. Foci assays are thus expected to yield functional insight that may complement or supersede genomic information, thereby giving radiation oncologists unique opportunities to individualize cancer treatments in the near future.
Insights
DNA damage response (DDR) foci assays show promise as predictive biomarkers for individualizing radiation therapy. These functional assays complement genomic data, potentially guiding personalized cancer treatment strategies.
Area of Science:
- Oncology
- Radiation Oncology
- Molecular Biology
Background:
- Predictive biomarkers are crucial for personalizing radiation therapy and radiosensitizer treatments.
- Genomic profiling offers insights into cancer's DNA damage response pathways.
- The utility of genomic data for predicting radiation sensitivity requires further investigation.
Purpose of the Study:
- To review the use of DNA damage response (DDR) foci as predictive biomarkers for radiation therapy.
- To highlight the transition of DDR foci assays from preclinical models to patient-derived samples.
- To emphasize the potential of DDR foci assays to guide individualized cancer treatment.
Main Methods:
- Focus on the analysis of subnuclear protein accumulation (foci) in DNA damage response (DDR) pathways.
- Utilizing assays for proteins like gamma-H2AX, 53BP1, and RAD51 as indicators of treatment sensitivity.
- Reviewing preclinical studies correlating DDR foci with clinical endpoints such as tumor control probability.
Main Results:
- Preclinical studies demonstrate the predictive value of DDR foci for treatment sensitivity.
- DDR foci assays can detect DNA repair alterations irrespective of the underlying mechanism.
- These assays provide a global measure of DDR network function.
Conclusions:
- DDR foci assays offer a functional approach to biomarker discovery, potentially surpassing genomic information.
- The ability to detect broad DNA repair alterations makes DDR foci versatile predictive tools.
- DDR foci assays are poised to enable personalized radiation oncology in the near future.
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