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Updated: Jun 22, 2026

Cell Cycle-specific Measurement of γH2AX and Apoptosis After Genotoxic Stress by Flow Cytometry
Published on: September 1, 2019
Physiological function as regulation of large transcriptional programs: the cellular response to genotoxic stress
S A Amundson1, M Bittner, P Meltzer
1National Institutes of Health, National Cancer Institute, Basic Research Laboratory, 20892, Bethesda, MD, USA. amundson@box-a.nih.gov
Abstract:
The responses to ionizing radiation and other genotoxic environmental stresses are complex and are regulated by a number of overlapping molecular pathways. One such stress signaling pathway involves p53, which regulates the expression of over 100 genes already identified. It is also becoming increasingly apparent that the pattern of stress gene expression has some cell type specificity. It may be possible to exploit these differences in stress gene responsiveness as molecular markers through the use of a combined informatics and functional genomics approach. The techniques of microarray analysis potentially offer the opportunity to monitor changes in gene expression across the entire set of expressed genes in a cell or organism. As an initial step in the development of a functional genomics approach to stress gene analysis, we have recently demonstrated the utility of cDNA microarray hybridization to measure radiation-stress gene responses and identified a number of previously unknown radiation-regulated genes. The responses of some of these genes to DNA-damaging agents vary widely in cell lines from different tissues of origin and different genetic backgrounds. While this again highlights the importance of a cellular context to genotoxic stress responses, it also raises the prospect of expression-profiling of cell lines, tissues, and tumors. Such profiles may have a predictive value if they can define regions of 'expression space' that correlate with important endpoints, such as response to cancer therapy regimens, or identification of exposures to environmental toxins.
Insights
Cellular responses to genotoxic stress are complex and context-dependent. Microarray analysis reveals novel radiation-regulated genes, offering potential biomarkers for therapy response and toxin exposure.
Area of Science:
- Molecular Biology
- Genomics
- Environmental Health
Background:
- Cellular responses to genotoxic stress involve complex molecular pathways.
- The p53 pathway regulates over 100 stress-response genes.
- Stress gene expression patterns exhibit cell type specificity.
Purpose of the Study:
- To investigate cell type-specific stress gene responses using functional genomics.
- To identify novel radiation-regulated genes.
- To explore the potential of gene expression profiles as biomarkers.
Main Methods:
- Utilized cDNA microarray hybridization to analyze gene expression.
- Measured radiation-stress gene responses in various cell lines.
- Employed an informatics and functional genomics approach.
Main Results:
- Identified several previously unknown radiation-regulated genes.
- Observed significant variation in gene responses across different cell lines.
- Demonstrated the utility of microarrays for stress gene analysis.
Conclusions:
- Genotoxic stress responses are highly dependent on cellular context.
- Expression profiling holds promise for predicting therapy response and identifying environmental exposures.
- Novel radiation-regulated genes may serve as valuable molecular markers.
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