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Measuring DNA Damage and Repair in Mouse Splenocytes After Chronic In Vivo Exposure to Very Low Doses of Beta- and Gamma-Radiation
Published on: July 3, 2015
DNA damage responses in murine Pre-B cells with genetic deficiencies in damage response genes
Cynthia L Innes1, Jill E Hesse1, Abigail J Morales2
1Environmental Stress and Cancer Group, Division of Intramural Research, National Institute of Environmental Health Sciences, Research Triangle Park, NC, USA.
Abstract:
DNA damage can be generated in multiple ways from genotoxic and physiologic sources. Genotoxic damage is known to disrupt cellular functions and is lethal if not repaired properly. We compare the transcriptional programs activated in response to genotoxic DNA damage induced by ionizing radiation (IR) in abl pre-B cells from mice deficient in DNA damage response (DDR) genes Atm, Mre11, Mdc1, H2ax, 53bp1, and DNA-PKcs. We identified a core IR-specific transcriptional response that occurs in abl pre-B cells from WT mice and compared the response of the other genotypes to the WT response. We also identified genotype specific responses and compared those to each other. The WT response includes many processes involved in lymphocyte development and immune response, as well as responses associated with the molecular mechanisms of cancer, such as TP53 signaling. As expected, there is a range of similarity in transcriptional profiles in comparison to WT cells, with Atm-/- cells being the most different from the core WT DDR and Mre11 hypomorph (Mre11A/A) cells also very dissimilar to WT and other genotypes. For example, NF-kB-related signaling and CD40 signaling are deficient in both Atm-/- and Mre11A/A cells, but present in all other genotypes. In contrast, IR-induced TP53 signaling is seen in the Mre11A/A cells, while these responses are not seen in the Atm-/- cells. By examining the similarities and differences in the signaling pathways in response to IR when specific genes are absent, our results further illustrate the contribution of each gene to the DDR. The microarray gene expression data discussed in this paper have been deposited in NCBI's Gene Expression Omnibus (GEO) (http://www.ncbi.nlm.nih.gov/geo/) and are accessible under accession number GSE116388.
Insights
DNA damage response (DDR) genes are crucial for cellular repair. This study reveals distinct transcriptional programs activated by ionizing radiation in DDR-deficient cells, highlighting gene-specific roles in DNA repair and cellular signaling pathways.
Area of Science:
- Molecular Biology
- Genetics
- Immunology
Background:
- Genotoxic DNA damage disrupts cellular functions and can be lethal if unrepaired.
- DNA damage response (DDR) pathways are essential for maintaining genomic stability.
- Understanding DDR gene contributions is vital for cancer research and therapeutic development.
Purpose of the Study:
- To compare transcriptional programs activated by ionizing radiation (IR) in mouse pre-B cells deficient in key DDR genes.
- To identify a core IR-specific transcriptional response in wild-type (WT) cells.
- To elucidate the distinct roles of DDR genes (Atm, Mre11, Mdc1, H2ax, 53bp1, DNA-PKcs) in cellular response to DNA damage.
Main Methods:
- Utilized microarray gene expression profiling.
- Exposed abl pre-B cells from WT and DDR-deficient mice to ionizing radiation.
- Compared transcriptional profiles to identify core and genotype-specific responses.
Main Results:
- Identified a core IR-specific transcriptional response in WT cells, involving lymphocyte development, immune response, and TP53 signaling.
- Observed varying degrees of similarity in transcriptional profiles compared to WT cells across different DDR-deficient genotypes.
- Noted that Atm-/- and Mre11 hypomorph (Mre11A/A) cells exhibited the most significant differences from WT DDR profiles, with deficiencies in NF-kB and CD40 signaling.
- Found IR-induced TP53 signaling in Mre11A/A cells, but not in Atm-/- cells.
Conclusions:
- The study delineates the specific contributions of individual DDR genes to the overall DNA damage response.
- Differences in transcriptional profiles highlight the complex interplay and distinct functions of DDR genes.
- Findings provide insights into DDR mechanisms relevant to cancer and immune system function.
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