Ku regulates the non-homologous end joining pathway choice of DNA double-strand break repair in human somatic cells.
The repair of DNA double-strand breaks (DSBs) is critical for the maintenance of genomic integrity and viability for all organisms. Mammals have evolved at least two genetically discrete ways to mediate DNA DSB repair: homologous recombination (HR) and non-homologous end joining (NHEJ). In mammalian...
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2010-02-01
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doaj-210d85442b3a4b30b881cb2c5e98cba22020-11-24T21:45:08ZengPublic Library of Science (PLoS)PLoS Genetics1553-73901553-74042010-02-0162e100085510.1371/journal.pgen.1000855Ku regulates the non-homologous end joining pathway choice of DNA double-strand break repair in human somatic cells.Farjana FattahEu Han LeeNatalie WeisenselYongbao WangNatalie LichterEric A HendricksonThe repair of DNA double-strand breaks (DSBs) is critical for the maintenance of genomic integrity and viability for all organisms. Mammals have evolved at least two genetically discrete ways to mediate DNA DSB repair: homologous recombination (HR) and non-homologous end joining (NHEJ). In mammalian cells, most DSBs are preferentially repaired by NHEJ. Recent work has demonstrated that NHEJ consists of at least two sub-pathways-the main Ku heterodimer-dependent or "classic" NHEJ (C-NHEJ) pathway and an "alternative" NHEJ (A-NHEJ) pathway, which usually generates microhomology-mediated signatures at repair junctions. In our study, recombinant adeno-associated virus knockout vectors were utilized to construct a series of isogenic human somatic cell lines deficient in the core C-NHEJ factors (Ku, DNA-PK(cs), XLF, and LIGIV), and the resulting cell lines were characterized for their ability to carry out DNA DSB repair. The absence of DNA-PK(cs), XLF, or LIGIV resulted in cell lines that were profoundly impaired in DNA DSB repair activity. Unexpectedly, Ku86-null cells showed wild-type levels of DNA DSB repair activity that was dominated by microhomology joining events indicative of A-NHEJ. Importantly, A-NHEJ DNA DSB repair activity could also be efficiently de-repressed in LIGIV-null and DNA-PK(cs)-null cells by subsequently reducing the level of Ku70. These studies demonstrate that in human cells C-NHEJ is the major DNA DSB repair pathway and they show that Ku is the critical C-NHEJ factor that regulates DNA NHEJ DSB pathway choice.http://europepmc.org/articles/PMC2829059?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Farjana Fattah Eu Han Lee Natalie Weisensel Yongbao Wang Natalie Lichter Eric A Hendrickson |
spellingShingle |
Farjana Fattah Eu Han Lee Natalie Weisensel Yongbao Wang Natalie Lichter Eric A Hendrickson Ku regulates the non-homologous end joining pathway choice of DNA double-strand break repair in human somatic cells. PLoS Genetics |
author_facet |
Farjana Fattah Eu Han Lee Natalie Weisensel Yongbao Wang Natalie Lichter Eric A Hendrickson |
author_sort |
Farjana Fattah |
title |
Ku regulates the non-homologous end joining pathway choice of DNA double-strand break repair in human somatic cells. |
title_short |
Ku regulates the non-homologous end joining pathway choice of DNA double-strand break repair in human somatic cells. |
title_full |
Ku regulates the non-homologous end joining pathway choice of DNA double-strand break repair in human somatic cells. |
title_fullStr |
Ku regulates the non-homologous end joining pathway choice of DNA double-strand break repair in human somatic cells. |
title_full_unstemmed |
Ku regulates the non-homologous end joining pathway choice of DNA double-strand break repair in human somatic cells. |
title_sort |
ku regulates the non-homologous end joining pathway choice of dna double-strand break repair in human somatic cells. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS Genetics |
issn |
1553-7390 1553-7404 |
publishDate |
2010-02-01 |
description |
The repair of DNA double-strand breaks (DSBs) is critical for the maintenance of genomic integrity and viability for all organisms. Mammals have evolved at least two genetically discrete ways to mediate DNA DSB repair: homologous recombination (HR) and non-homologous end joining (NHEJ). In mammalian cells, most DSBs are preferentially repaired by NHEJ. Recent work has demonstrated that NHEJ consists of at least two sub-pathways-the main Ku heterodimer-dependent or "classic" NHEJ (C-NHEJ) pathway and an "alternative" NHEJ (A-NHEJ) pathway, which usually generates microhomology-mediated signatures at repair junctions. In our study, recombinant adeno-associated virus knockout vectors were utilized to construct a series of isogenic human somatic cell lines deficient in the core C-NHEJ factors (Ku, DNA-PK(cs), XLF, and LIGIV), and the resulting cell lines were characterized for their ability to carry out DNA DSB repair. The absence of DNA-PK(cs), XLF, or LIGIV resulted in cell lines that were profoundly impaired in DNA DSB repair activity. Unexpectedly, Ku86-null cells showed wild-type levels of DNA DSB repair activity that was dominated by microhomology joining events indicative of A-NHEJ. Importantly, A-NHEJ DNA DSB repair activity could also be efficiently de-repressed in LIGIV-null and DNA-PK(cs)-null cells by subsequently reducing the level of Ku70. These studies demonstrate that in human cells C-NHEJ is the major DNA DSB repair pathway and they show that Ku is the critical C-NHEJ factor that regulates DNA NHEJ DSB pathway choice. |
url |
http://europepmc.org/articles/PMC2829059?pdf=render |
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