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Updated: Oct 2, 2026

Two- and Three-Dimensional Live Cell Imaging of DNA Damage Response Proteins
Published on: September 28, 2012
Transcriptional regulation of mitotic genes by camptothecin-induced DNA damage: microarray analysis of dose- and
Yi Zhou1, Fuad G Gwadry, William C Reinhold
1Laboratory of Molecular Pharmacology, Division of Basic Sciences, National Cancer Institute, NIH, Bethesda, Maryland 20892, USA.
Abstract:
cDNA microarray technology can be used to establish associations between characteristic gene expression patterns and molecular responses to drug therapy. In this study, we used cDNA microarrays of 1694 cancer-related genes to monitor the gene expression consequences of the treatment of HCT116 colon cancer cells with the topoisomerase I inhibitor camptothecin (CPT). To obtain a more homogeneous cellular response, we synchronized the cells in S-phase using aphidicolin (APH) before CPT treatment. Brief incubation with 20 and 1000 nM CPT caused reversible and irreversible G(2) arrest, respectively, and the patterns of gene expression change (with reference to untreated controls) were strikingly different at the two concentrations. Thirty-three genes, mainly divided into three groups, showed characteristic changes in the first 20 h as a consequence of treatment. Northern blots performed for five of these genes (each under eight experimental conditions) were quite consistent with the microarray results (average correlation coefficient, 0.86). Several p53-activated stress response genes were up-regulated after treatment with 1000 nM CPT or prolonged exposure to APH, but it seemed that the up-regulation did not directly cause cell cycle arrest because the up-regulation induced by prolonged treatment with APH did not prevent cell cycle progression after removal of APH. In contrast, cell cycle-dependent up-regulation of a group of mitosis-related genes was delayed or blocked after CPT treatments. The interrupted up-regulation of this group of genes was directly associated with G(2) arrest. In addition, we observed down-regulation of gene expression in cells that were recovering from cell cycle delay. The observations reported here suggest a fundamental difference at the gene expression level between the molecular mechanism of reversible G(2) delay that follows mild DNA damage and the mechanism of permanent G(2) arrest that follows more extensive DNA damage.
Insights
Camptothecin (CPT) treatment of colon cancer cells revealed distinct gene expression patterns linked to reversible versus irreversible cell cycle arrest. Gene expression changes highlight differences in DNA damage response pathways.
Area of Science:
- Molecular Biology
- Cancer Research
- Genomics
Background:
- cDNA microarray technology enables the study of gene expression patterns in response to therapeutic agents.
- Understanding molecular responses to chemotherapy is crucial for developing effective cancer treatments.
Purpose of the Study:
- To investigate the gene expression consequences of camptothecin (CPT) treatment in synchronized HCT116 colon cancer cells.
- To differentiate the molecular mechanisms underlying reversible and irreversible G2 arrest induced by varying CPT concentrations.
Main Methods:
- Utilized cDNA microarrays to analyze the expression of 1694 cancer-related genes.
- Synchronized HCT116 cells in S-phase using aphidicolin (APH) prior to CPT treatment.
- Validated microarray findings for selected genes using Northern blot analysis.
Main Results:
- CPT treatment at 20 nM induced reversible G2 arrest with distinct gene expression changes compared to 1000 nM CPT, which caused irreversible G2 arrest.
- Thirty-three genes showed characteristic expression changes within 20 hours, with Northern blot validation showing high consistency (0.86 average correlation).
- p53-activated stress response genes were upregulated by high-dose CPT or prolonged APH, but did not directly cause cell cycle arrest; mitosis-related gene upregulation was blocked by CPT, correlating with G2 arrest.
Conclusions:
- Distinct gene expression profiles correlate with reversible G2 delay versus permanent G2 arrest following DNA damage.
- The study reveals fundamental differences in gene expression mechanisms between mild and extensive DNA damage responses.
- CPT's effect on mitosis-related gene expression is a key indicator of G2 arrest severity.
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