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Recruitment Kinetics of DNA Repair Proteins Mdc1 and Rad52 but Not 53BP1 Depend on Damage Complexity

The recruitment kinetics of double-strand break (DSB) signaling and repair proteins Mdc1, 53BP1 and Rad52 into radiation-induced foci was studied by live-cell fluorescence microscopy after ion microirradiation. To investigate the influence of damage density and complexity on recruitment kinetics, wh...

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Autores principales: Hable, Volker, Drexler, Guido A., Brüning, Tino, Burgdorf, Christian, Greubel, Christoph, Derer, Anja, Seel, Judith, Strickfaden, Hilmar, Cremer, Thomas, Friedl, Anna A., Dollinger, Günther
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3408406/
https://www.ncbi.nlm.nih.gov/pubmed/22860035
http://dx.doi.org/10.1371/journal.pone.0041943
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author Hable, Volker
Drexler, Guido A.
Brüning, Tino
Burgdorf, Christian
Greubel, Christoph
Derer, Anja
Seel, Judith
Strickfaden, Hilmar
Cremer, Thomas
Friedl, Anna A.
Dollinger, Günther
author_facet Hable, Volker
Drexler, Guido A.
Brüning, Tino
Burgdorf, Christian
Greubel, Christoph
Derer, Anja
Seel, Judith
Strickfaden, Hilmar
Cremer, Thomas
Friedl, Anna A.
Dollinger, Günther
author_sort Hable, Volker
collection PubMed
description The recruitment kinetics of double-strand break (DSB) signaling and repair proteins Mdc1, 53BP1 and Rad52 into radiation-induced foci was studied by live-cell fluorescence microscopy after ion microirradiation. To investigate the influence of damage density and complexity on recruitment kinetics, which cannot be done by UV laser irradiation used in former studies, we utilized 43 MeV carbon ions with high linear energy transfer per ion (LET = 370 keV/µm) to create a large fraction of clustered DSBs, thus forming complex DNA damage, and 20 MeV protons with low LET (LET  = 2.6 keV/µm) to create mainly isolated DSBs. Kinetics for all three proteins was characterized by a time lag period T(0) after irradiation, during which no foci are formed. Subsequently, the proteins accumulate into foci with characteristic mean recruitment times τ(1). Mdc1 accumulates faster (T(0) = 17±2 s, τ(1) = 98±11 s) than 53BP1 (T(0) = 77±7 s, τ(1) = 310±60 s) after high LET irradiation. However, recruitment of Mdc1 slows down (T(0) = 73±16 s, τ(1) = 1050±270 s) after low LET irradiation. The recruitment kinetics of Rad52 is slower than that of Mdc1, but exhibits the same dependence on LET. In contrast, the mean recruitment time τ(1) of 53BP1 remains almost constant when varying LET. Comparison to literature data on Mdc1 recruitment after UV laser irradiation shows that this rather resembles recruitment after high than low LET ionizing radiation. So this work shows that damage quality has a large influence on repair processes and has to be considered when comparing different studies.
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spelling pubmed-34084062012-08-02 Recruitment Kinetics of DNA Repair Proteins Mdc1 and Rad52 but Not 53BP1 Depend on Damage Complexity Hable, Volker Drexler, Guido A. Brüning, Tino Burgdorf, Christian Greubel, Christoph Derer, Anja Seel, Judith Strickfaden, Hilmar Cremer, Thomas Friedl, Anna A. Dollinger, Günther PLoS One Research Article The recruitment kinetics of double-strand break (DSB) signaling and repair proteins Mdc1, 53BP1 and Rad52 into radiation-induced foci was studied by live-cell fluorescence microscopy after ion microirradiation. To investigate the influence of damage density and complexity on recruitment kinetics, which cannot be done by UV laser irradiation used in former studies, we utilized 43 MeV carbon ions with high linear energy transfer per ion (LET = 370 keV/µm) to create a large fraction of clustered DSBs, thus forming complex DNA damage, and 20 MeV protons with low LET (LET  = 2.6 keV/µm) to create mainly isolated DSBs. Kinetics for all three proteins was characterized by a time lag period T(0) after irradiation, during which no foci are formed. Subsequently, the proteins accumulate into foci with characteristic mean recruitment times τ(1). Mdc1 accumulates faster (T(0) = 17±2 s, τ(1) = 98±11 s) than 53BP1 (T(0) = 77±7 s, τ(1) = 310±60 s) after high LET irradiation. However, recruitment of Mdc1 slows down (T(0) = 73±16 s, τ(1) = 1050±270 s) after low LET irradiation. The recruitment kinetics of Rad52 is slower than that of Mdc1, but exhibits the same dependence on LET. In contrast, the mean recruitment time τ(1) of 53BP1 remains almost constant when varying LET. Comparison to literature data on Mdc1 recruitment after UV laser irradiation shows that this rather resembles recruitment after high than low LET ionizing radiation. So this work shows that damage quality has a large influence on repair processes and has to be considered when comparing different studies. Public Library of Science 2012-07-30 /pmc/articles/PMC3408406/ /pubmed/22860035 http://dx.doi.org/10.1371/journal.pone.0041943 Text en © 2012 Hable 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
Hable, Volker
Drexler, Guido A.
Brüning, Tino
Burgdorf, Christian
Greubel, Christoph
Derer, Anja
Seel, Judith
Strickfaden, Hilmar
Cremer, Thomas
Friedl, Anna A.
Dollinger, Günther
Recruitment Kinetics of DNA Repair Proteins Mdc1 and Rad52 but Not 53BP1 Depend on Damage Complexity
title Recruitment Kinetics of DNA Repair Proteins Mdc1 and Rad52 but Not 53BP1 Depend on Damage Complexity
title_full Recruitment Kinetics of DNA Repair Proteins Mdc1 and Rad52 but Not 53BP1 Depend on Damage Complexity
title_fullStr Recruitment Kinetics of DNA Repair Proteins Mdc1 and Rad52 but Not 53BP1 Depend on Damage Complexity
title_full_unstemmed Recruitment Kinetics of DNA Repair Proteins Mdc1 and Rad52 but Not 53BP1 Depend on Damage Complexity
title_short Recruitment Kinetics of DNA Repair Proteins Mdc1 and Rad52 but Not 53BP1 Depend on Damage Complexity
title_sort recruitment kinetics of dna repair proteins mdc1 and rad52 but not 53bp1 depend on damage complexity
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3408406/
https://www.ncbi.nlm.nih.gov/pubmed/22860035
http://dx.doi.org/10.1371/journal.pone.0041943
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