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Induction and persistence of radiation-induced DNA damage is more pronounced in young animals than in old animals

Younger individuals are more prone to develop cancer upon ionizing radiation (IR) exposure. Radiation-induced tumors are associated with inefficient repair of IR-induced DNA damage and genome instability. Phosphorylation of histone H2AX (γ-H2AX) is the initial event in repair of IR-induced DNA damag...

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Autores principales: Hudson, Darryl, Kovalchuk, Igor, Koturbash, Igor, Kolb, Bryan, Martin, Olga A., Kovalchuk, Olga
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals LLC 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3164369/
https://www.ncbi.nlm.nih.gov/pubmed/21685513
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author Hudson, Darryl
Kovalchuk, Igor
Koturbash, Igor
Kolb, Bryan
Martin, Olga A.
Kovalchuk, Olga
author_facet Hudson, Darryl
Kovalchuk, Igor
Koturbash, Igor
Kolb, Bryan
Martin, Olga A.
Kovalchuk, Olga
author_sort Hudson, Darryl
collection PubMed
description Younger individuals are more prone to develop cancer upon ionizing radiation (IR) exposure. Radiation-induced tumors are associated with inefficient repair of IR-induced DNA damage and genome instability. Phosphorylation of histone H2AX (γ-H2AX) is the initial event in repair of IR-induced DNA damage on the chromatin flanking the DNA strand breaks. This step is crucially important for the repair of DNA strand breaks and for the maintenance of genome stability. We studied the molecular underpinnings of the age-related IR effects using an animal model. By assaying for IR-induced γ-H2AX foci we analyzed the induction and repair of the DNA strand breaks in spleen, thymus, liver, lung, kidney, cerebellum, hippocampus, frontal cortex and olfactory bulb of 7, 14, 24, 30 and 45 days old male and female mice as a function of age. We demonstrate that tissues of younger animals are much more susceptible to IR-induced DNA damage. Younger animals exhibited higher levels of γ-H2AX formation which partially correlated with cellular proliferation and expression of DNA repair proteins. Induction and persistence of γ-H2AX foci was the highest in lymphoid organs (thymus and spleen) of 7 and 14 day old mice. The lowest focal induction was seen in lung and brain of young animals. The mechanisms of cell and tissue-specificity of in vivo IR responses need to be further dissected. This study provides a roadmap for the future analyses of DNA damage and repair induction in young individuals.
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spelling pubmed-31643692011-09-02 Induction and persistence of radiation-induced DNA damage is more pronounced in young animals than in old animals Hudson, Darryl Kovalchuk, Igor Koturbash, Igor Kolb, Bryan Martin, Olga A. Kovalchuk, Olga Aging (Albany NY) Research Paper Younger individuals are more prone to develop cancer upon ionizing radiation (IR) exposure. Radiation-induced tumors are associated with inefficient repair of IR-induced DNA damage and genome instability. Phosphorylation of histone H2AX (γ-H2AX) is the initial event in repair of IR-induced DNA damage on the chromatin flanking the DNA strand breaks. This step is crucially important for the repair of DNA strand breaks and for the maintenance of genome stability. We studied the molecular underpinnings of the age-related IR effects using an animal model. By assaying for IR-induced γ-H2AX foci we analyzed the induction and repair of the DNA strand breaks in spleen, thymus, liver, lung, kidney, cerebellum, hippocampus, frontal cortex and olfactory bulb of 7, 14, 24, 30 and 45 days old male and female mice as a function of age. We demonstrate that tissues of younger animals are much more susceptible to IR-induced DNA damage. Younger animals exhibited higher levels of γ-H2AX formation which partially correlated with cellular proliferation and expression of DNA repair proteins. Induction and persistence of γ-H2AX foci was the highest in lymphoid organs (thymus and spleen) of 7 and 14 day old mice. The lowest focal induction was seen in lung and brain of young animals. The mechanisms of cell and tissue-specificity of in vivo IR responses need to be further dissected. This study provides a roadmap for the future analyses of DNA damage and repair induction in young individuals. Impact Journals LLC 2011-06-18 /pmc/articles/PMC3164369/ /pubmed/21685513 Text en Copyright: © 2011 Hudson et al. http://creativecommons.org/licenses/by/2.5/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited
spellingShingle Research Paper
Hudson, Darryl
Kovalchuk, Igor
Koturbash, Igor
Kolb, Bryan
Martin, Olga A.
Kovalchuk, Olga
Induction and persistence of radiation-induced DNA damage is more pronounced in young animals than in old animals
title Induction and persistence of radiation-induced DNA damage is more pronounced in young animals than in old animals
title_full Induction and persistence of radiation-induced DNA damage is more pronounced in young animals than in old animals
title_fullStr Induction and persistence of radiation-induced DNA damage is more pronounced in young animals than in old animals
title_full_unstemmed Induction and persistence of radiation-induced DNA damage is more pronounced in young animals than in old animals
title_short Induction and persistence of radiation-induced DNA damage is more pronounced in young animals than in old animals
title_sort induction and persistence of radiation-induced dna damage is more pronounced in young animals than in old animals
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3164369/
https://www.ncbi.nlm.nih.gov/pubmed/21685513
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