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Analysis of DNA Double-strand Break (DSB) Repair in Mammalian Cells
Published on: September 8, 2010
Differential gene expression in a DNA double-strand-break repair mutant XRS-5 defective in Ku80: analysis by cDNA
J Y Chan1, L K Chen, J F Chang
1Institute of Radiological Sciences, National Yang Ming University, Taipei, Taiwan.
Abstract:
The ability of cells to rejoin DNA double-strand breaks (DSBs) usually correlates with their radiosensitivity. This correlation has been demonstrated in radiosensitive cells, including the Chinese hamster ovary mutant XRS-5. XRS-5 is defective in a DNA end-binding protein, Ku80, which is a component of a DNA-dependent protein kinase complex used for joining strand breaks. However, Ku80-deficient cells are known to be retarded in cell proliferation and growth as well as other yet to be identified defects. Using custom-made 600-gene cDNA microarray filters, we found differential gene expressions between the wild-type and XRS-5 cells. Defective Ku80 apparently affects the expression of several repair genes, including topoisomerase-I and -IIA, ERCC5, MLH1, and ATM. In contrast, other DNA repair-associated genes, such as GADD45A, EGR1 MDM2 and p53, were not affected. In addition, for large numbers of growth-associated genes, such as cyclins and clks, the growth factors and cytokines were also affected. Down-regulated expression was also found in several categories of seemingly unrelated genes, including apoptosis, angiogenesis, kinase and signaling, phosphatase, stress protein, proto-oncogenes and tumor suppressors, transcription and translation factors. A RT-PCR analysis confirmed that the XRS-5 cells used were defective in Ku80 expression. The diversified groups of genes being affected could mean that Ku80, a multi-functional DNA-binding protein, not only affects DNA repair, but is also involved in transcription regulation. Our data, taken together, indicate that there are specific genes being modulated in Ku80- deficient cells, and that some of the DNA repair pathways and other biological functions are apparently linked, suggesting that a defect in one gene could have global effects on many other processes.
Insights
Defects in Ku80, a DNA repair protein, impact numerous genes involved in DNA repair, cell growth, and other biological processes. This highlights Ku80's crucial role beyond DNA repair, affecting transcription regulation and cellular functions.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- Cellular DNA double-strand breaks (DSBs) repair capacity typically correlates with radiosensitivity.
- The Chinese hamster ovary mutant XRS-5, deficient in the DNA end-binding protein Ku80, exhibits radiosensitivity and impaired cell proliferation.
- Ku80 is a key component of the DNA-dependent protein kinase complex essential for DNA strand break ligation.
Purpose of the Study:
- To investigate the global gene expression changes in Ku80-deficient cells.
- To identify specific genes and pathways affected by the absence of functional Ku80.
- To explore the broader cellular functions influenced by Ku80 beyond its known role in DNA repair.
Main Methods:
- Utilized custom-made 600-gene cDNA microarray filters to compare gene expression between wild-type and XRS-5 cells.
- Performed RT-PCR analysis to confirm the deficiency in Ku80 expression in XRS-5 cells.
Main Results:
- Found differential gene expression in XRS-5 cells, with down-regulation of several DNA repair genes (e.g., topoisomerase-I, -IIA, ERCC5, MLH1, ATM).
- Observed affected expression of growth-associated genes (e.g., cyclins, clks), growth factors, and cytokines.
- Identified down-regulated expression in diverse gene categories including apoptosis, angiogenesis, kinase/signaling, transcription, and translation factors.
Conclusions:
- Ku80 deficiency leads to significant modulation of specific genes, impacting DNA repair pathways and other biological functions.
- Ku80 appears to be a multi-functional protein involved in transcription regulation, not solely DNA repair.
- A defect in Ku80 can have global effects on cellular processes, suggesting interconnectedness between DNA repair and other cellular functions.
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