Cargando…

Effect of Chromatin Structure on the Extent and Distribution of DNA Double Strand Breaks Produced by Ionizing Radiation; Comparative Study of hESC and Differentiated Cells Lines

Chromatin structure affects the extent of DNA damage and repair. Thus, it has been shown that heterochromatin is more protective against DNA double strand breaks (DSB) formation by ionizing radiation (IR); and that DNA DSB repair may proceed differently in hetero- and euchromatin regions. Human embr...

Descripción completa

Detalles Bibliográficos
Autores principales: Venkatesh, Priyanka, Panyutin, Irina V., Remeeva, Evgenia, Neumann, Ronald D., Panyutin, Igor G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4730303/
https://www.ncbi.nlm.nih.gov/pubmed/26729112
http://dx.doi.org/10.3390/ijms17010058
_version_ 1782412371628654592
author Venkatesh, Priyanka
Panyutin, Irina V.
Remeeva, Evgenia
Neumann, Ronald D.
Panyutin, Igor G.
author_facet Venkatesh, Priyanka
Panyutin, Irina V.
Remeeva, Evgenia
Neumann, Ronald D.
Panyutin, Igor G.
author_sort Venkatesh, Priyanka
collection PubMed
description Chromatin structure affects the extent of DNA damage and repair. Thus, it has been shown that heterochromatin is more protective against DNA double strand breaks (DSB) formation by ionizing radiation (IR); and that DNA DSB repair may proceed differently in hetero- and euchromatin regions. Human embryonic stem cells (hESC) have a more open chromatin structure than differentiated cells. Here, we study the effect of chromatin structure in hESC on initial DSB formation and subsequent DSB repair. DSB were scored by comet assay; and DSB repair was assessed by repair foci formation via 53BP1 antibody staining. We found that in hESC, heterochromatin is confined to distinct regions, while in differentiated cells it is distributed more evenly within the nuclei. The same dose of ionizing radiation produced considerably more DSB in hESC than in differentiated derivatives, normal human fibroblasts; and one cancer cell line. At the same time, the number of DNA repair foci were not statistically different among these cells. We showed that in hESC, DNA repair foci localized almost exclusively outside the heterochromatin regions. We also noticed that exposure to ionizing radiation resulted in an increase in heterochromatin marker H3K9me3 in cancer HT1080 cells, and to a lesser extent in IMR90 normal fibroblasts, but not in hESCs. These results demonstrate the importance of chromatin conformation for DNA protection and DNA damage repair; and indicate the difference of these processes in hESC.
format Online
Article
Text
id pubmed-4730303
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-47303032016-02-11 Effect of Chromatin Structure on the Extent and Distribution of DNA Double Strand Breaks Produced by Ionizing Radiation; Comparative Study of hESC and Differentiated Cells Lines Venkatesh, Priyanka Panyutin, Irina V. Remeeva, Evgenia Neumann, Ronald D. Panyutin, Igor G. Int J Mol Sci Article Chromatin structure affects the extent of DNA damage and repair. Thus, it has been shown that heterochromatin is more protective against DNA double strand breaks (DSB) formation by ionizing radiation (IR); and that DNA DSB repair may proceed differently in hetero- and euchromatin regions. Human embryonic stem cells (hESC) have a more open chromatin structure than differentiated cells. Here, we study the effect of chromatin structure in hESC on initial DSB formation and subsequent DSB repair. DSB were scored by comet assay; and DSB repair was assessed by repair foci formation via 53BP1 antibody staining. We found that in hESC, heterochromatin is confined to distinct regions, while in differentiated cells it is distributed more evenly within the nuclei. The same dose of ionizing radiation produced considerably more DSB in hESC than in differentiated derivatives, normal human fibroblasts; and one cancer cell line. At the same time, the number of DNA repair foci were not statistically different among these cells. We showed that in hESC, DNA repair foci localized almost exclusively outside the heterochromatin regions. We also noticed that exposure to ionizing radiation resulted in an increase in heterochromatin marker H3K9me3 in cancer HT1080 cells, and to a lesser extent in IMR90 normal fibroblasts, but not in hESCs. These results demonstrate the importance of chromatin conformation for DNA protection and DNA damage repair; and indicate the difference of these processes in hESC. MDPI 2016-01-02 /pmc/articles/PMC4730303/ /pubmed/26729112 http://dx.doi.org/10.3390/ijms17010058 Text en © 2016 by the authors; licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons by Attribution (CC-BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Venkatesh, Priyanka
Panyutin, Irina V.
Remeeva, Evgenia
Neumann, Ronald D.
Panyutin, Igor G.
Effect of Chromatin Structure on the Extent and Distribution of DNA Double Strand Breaks Produced by Ionizing Radiation; Comparative Study of hESC and Differentiated Cells Lines
title Effect of Chromatin Structure on the Extent and Distribution of DNA Double Strand Breaks Produced by Ionizing Radiation; Comparative Study of hESC and Differentiated Cells Lines
title_full Effect of Chromatin Structure on the Extent and Distribution of DNA Double Strand Breaks Produced by Ionizing Radiation; Comparative Study of hESC and Differentiated Cells Lines
title_fullStr Effect of Chromatin Structure on the Extent and Distribution of DNA Double Strand Breaks Produced by Ionizing Radiation; Comparative Study of hESC and Differentiated Cells Lines
title_full_unstemmed Effect of Chromatin Structure on the Extent and Distribution of DNA Double Strand Breaks Produced by Ionizing Radiation; Comparative Study of hESC and Differentiated Cells Lines
title_short Effect of Chromatin Structure on the Extent and Distribution of DNA Double Strand Breaks Produced by Ionizing Radiation; Comparative Study of hESC and Differentiated Cells Lines
title_sort effect of chromatin structure on the extent and distribution of dna double strand breaks produced by ionizing radiation; comparative study of hesc and differentiated cells lines
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4730303/
https://www.ncbi.nlm.nih.gov/pubmed/26729112
http://dx.doi.org/10.3390/ijms17010058
work_keys_str_mv AT venkateshpriyanka effectofchromatinstructureontheextentanddistributionofdnadoublestrandbreaksproducedbyionizingradiationcomparativestudyofhescanddifferentiatedcellslines
AT panyutinirinav effectofchromatinstructureontheextentanddistributionofdnadoublestrandbreaksproducedbyionizingradiationcomparativestudyofhescanddifferentiatedcellslines
AT remeevaevgenia effectofchromatinstructureontheextentanddistributionofdnadoublestrandbreaksproducedbyionizingradiationcomparativestudyofhescanddifferentiatedcellslines
AT neumannronaldd effectofchromatinstructureontheextentanddistributionofdnadoublestrandbreaksproducedbyionizingradiationcomparativestudyofhescanddifferentiatedcellslines
AT panyutinigorg effectofchromatinstructureontheextentanddistributionofdnadoublestrandbreaksproducedbyionizingradiationcomparativestudyofhescanddifferentiatedcellslines