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A-Type Lamins Maintain the Positional Stability of DNA Damage Repair Foci in Mammalian Nuclei

A-type lamins encoded by LMNA form a structural fibrillar meshwork within the mammalian nucleus. How this nuclear organization may influence the execution of biological processes involving DNA transactions remains unclear. Here, we characterize changes in the dynamics and biochemical interactions of...

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Autores principales: Mahen, Robert, Hattori, Hiroyoshi, Lee, Miyoung, Sharma, Pooja, Jeyasekharan, Anand D., Venkitaraman, Ashok R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3642183/
https://www.ncbi.nlm.nih.gov/pubmed/23658700
http://dx.doi.org/10.1371/journal.pone.0061893
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author Mahen, Robert
Hattori, Hiroyoshi
Lee, Miyoung
Sharma, Pooja
Jeyasekharan, Anand D.
Venkitaraman, Ashok R.
author_facet Mahen, Robert
Hattori, Hiroyoshi
Lee, Miyoung
Sharma, Pooja
Jeyasekharan, Anand D.
Venkitaraman, Ashok R.
author_sort Mahen, Robert
collection PubMed
description A-type lamins encoded by LMNA form a structural fibrillar meshwork within the mammalian nucleus. How this nuclear organization may influence the execution of biological processes involving DNA transactions remains unclear. Here, we characterize changes in the dynamics and biochemical interactions of lamin A/C after DNA damage. We find that DNA breakage reduces the mobility of nucleoplasmic GFP-lamin A throughout the nucleus as measured by dynamic fluorescence imaging and spectroscopy in living cells, suggestive of incorporation into stable macromolecular complexes, but does not induce the focal accumulation of GFP-lamin A at damage sites. Using a proximity ligation assay and biochemical analyses, we show that lamin A engages chromatin via histone H2AX and its phosphorylated form (γH2AX) induced by DNA damage, and that these interactions are enhanced after DNA damage. Finally, we use three-dimensional time-lapse imaging to show that LMNA inactivation significantly reduces the positional stability of DNA repair foci in living cells. This defect is partially rescued by the stable expression of GFP-lamin A. Thus collectively, our findings suggest that the dynamic structural meshwork formed by A-type lamins anchors sites of DNA repair in mammalian nuclei, providing fresh insight into the control of DNA transactions by nuclear structural organization.
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spelling pubmed-36421832013-05-08 A-Type Lamins Maintain the Positional Stability of DNA Damage Repair Foci in Mammalian Nuclei Mahen, Robert Hattori, Hiroyoshi Lee, Miyoung Sharma, Pooja Jeyasekharan, Anand D. Venkitaraman, Ashok R. PLoS One Research Article A-type lamins encoded by LMNA form a structural fibrillar meshwork within the mammalian nucleus. How this nuclear organization may influence the execution of biological processes involving DNA transactions remains unclear. Here, we characterize changes in the dynamics and biochemical interactions of lamin A/C after DNA damage. We find that DNA breakage reduces the mobility of nucleoplasmic GFP-lamin A throughout the nucleus as measured by dynamic fluorescence imaging and spectroscopy in living cells, suggestive of incorporation into stable macromolecular complexes, but does not induce the focal accumulation of GFP-lamin A at damage sites. Using a proximity ligation assay and biochemical analyses, we show that lamin A engages chromatin via histone H2AX and its phosphorylated form (γH2AX) induced by DNA damage, and that these interactions are enhanced after DNA damage. Finally, we use three-dimensional time-lapse imaging to show that LMNA inactivation significantly reduces the positional stability of DNA repair foci in living cells. This defect is partially rescued by the stable expression of GFP-lamin A. Thus collectively, our findings suggest that the dynamic structural meshwork formed by A-type lamins anchors sites of DNA repair in mammalian nuclei, providing fresh insight into the control of DNA transactions by nuclear structural organization. Public Library of Science 2013-05-02 /pmc/articles/PMC3642183/ /pubmed/23658700 http://dx.doi.org/10.1371/journal.pone.0061893 Text en © 2013 Mahen et al http://creativecommons.org/licenses/by/4.0/ 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 properly credited.
spellingShingle Research Article
Mahen, Robert
Hattori, Hiroyoshi
Lee, Miyoung
Sharma, Pooja
Jeyasekharan, Anand D.
Venkitaraman, Ashok R.
A-Type Lamins Maintain the Positional Stability of DNA Damage Repair Foci in Mammalian Nuclei
title A-Type Lamins Maintain the Positional Stability of DNA Damage Repair Foci in Mammalian Nuclei
title_full A-Type Lamins Maintain the Positional Stability of DNA Damage Repair Foci in Mammalian Nuclei
title_fullStr A-Type Lamins Maintain the Positional Stability of DNA Damage Repair Foci in Mammalian Nuclei
title_full_unstemmed A-Type Lamins Maintain the Positional Stability of DNA Damage Repair Foci in Mammalian Nuclei
title_short A-Type Lamins Maintain the Positional Stability of DNA Damage Repair Foci in Mammalian Nuclei
title_sort a-type lamins maintain the positional stability of dna damage repair foci in mammalian nuclei
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3642183/
https://www.ncbi.nlm.nih.gov/pubmed/23658700
http://dx.doi.org/10.1371/journal.pone.0061893
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