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Human RECQ1 Interacts with Ku70/80 and Modulates DNA End-Joining of Double-Strand Breaks

Genomic instability is a known precursor to cancer and aging. The RecQ helicases are a highly conserved family of DNA-unwinding enzymes that play key roles in maintaining genome stability in all living organisms. Human RecQ homologs include RECQ1, BLM, WRN, RECQ4, and RECQ5β, three of which have bee...

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Autores principales: Parvathaneni, Swetha, Stortchevoi, Alexei, Sommers, Joshua A., Brosh, Robert M., Sharma, Sudha
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3641083/
https://www.ncbi.nlm.nih.gov/pubmed/23650516
http://dx.doi.org/10.1371/journal.pone.0062481
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author Parvathaneni, Swetha
Stortchevoi, Alexei
Sommers, Joshua A.
Brosh, Robert M.
Sharma, Sudha
author_facet Parvathaneni, Swetha
Stortchevoi, Alexei
Sommers, Joshua A.
Brosh, Robert M.
Sharma, Sudha
author_sort Parvathaneni, Swetha
collection PubMed
description Genomic instability is a known precursor to cancer and aging. The RecQ helicases are a highly conserved family of DNA-unwinding enzymes that play key roles in maintaining genome stability in all living organisms. Human RecQ homologs include RECQ1, BLM, WRN, RECQ4, and RECQ5β, three of which have been linked to diseases with elevated risk of cancer and growth defects (Bloom Syndrome and Rothmund-Thomson Syndrome) or premature aging (Werner Syndrome). RECQ1, the first RecQ helicase discovered and the most abundant in human cells, is the least well understood of the five human RecQ homologs. We have previously described that knockout of RECQ1 in mice or knockdown of its expression in human cells results in elevated frequency of spontaneous sister chromatid exchanges, chromosomal instability, increased load of DNA damage and heightened sensitivity to ionizing radiation. We have now obtained evidence implicating RECQ1 in the nonhomologous end-joining pathway of DNA double-strand break repair. We show that RECQ1 interacts directly with the Ku70/80 subunit of the DNA-PK complex, and depletion of RECQ1 results in reduced end-joining in cell free extracts. In vitro, RECQ1 binds and unwinds the Ku70/80-bound partial duplex DNA substrate efficiently. Linear DNA is co-bound by RECQ1 and Ku70/80, and DNA binding by Ku70/80 is modulated by RECQ1. Collectively, these results provide the first evidence for an interaction of RECQ1 with Ku70/80 and a role of the human RecQ helicase in double-strand break repair through nonhomologous end-joining.
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spelling pubmed-36410832013-05-06 Human RECQ1 Interacts with Ku70/80 and Modulates DNA End-Joining of Double-Strand Breaks Parvathaneni, Swetha Stortchevoi, Alexei Sommers, Joshua A. Brosh, Robert M. Sharma, Sudha PLoS One Research Article Genomic instability is a known precursor to cancer and aging. The RecQ helicases are a highly conserved family of DNA-unwinding enzymes that play key roles in maintaining genome stability in all living organisms. Human RecQ homologs include RECQ1, BLM, WRN, RECQ4, and RECQ5β, three of which have been linked to diseases with elevated risk of cancer and growth defects (Bloom Syndrome and Rothmund-Thomson Syndrome) or premature aging (Werner Syndrome). RECQ1, the first RecQ helicase discovered and the most abundant in human cells, is the least well understood of the five human RecQ homologs. We have previously described that knockout of RECQ1 in mice or knockdown of its expression in human cells results in elevated frequency of spontaneous sister chromatid exchanges, chromosomal instability, increased load of DNA damage and heightened sensitivity to ionizing radiation. We have now obtained evidence implicating RECQ1 in the nonhomologous end-joining pathway of DNA double-strand break repair. We show that RECQ1 interacts directly with the Ku70/80 subunit of the DNA-PK complex, and depletion of RECQ1 results in reduced end-joining in cell free extracts. In vitro, RECQ1 binds and unwinds the Ku70/80-bound partial duplex DNA substrate efficiently. Linear DNA is co-bound by RECQ1 and Ku70/80, and DNA binding by Ku70/80 is modulated by RECQ1. Collectively, these results provide the first evidence for an interaction of RECQ1 with Ku70/80 and a role of the human RecQ helicase in double-strand break repair through nonhomologous end-joining. Public Library of Science 2013-05-01 /pmc/articles/PMC3641083/ /pubmed/23650516 http://dx.doi.org/10.1371/journal.pone.0062481 Text en https://creativecommons.org/publicdomain/zero/1.0/ This is an open-access article distributed under the terms of the Creative Commons Public Domain declaration, which stipulates that, once placed in the public domain, this work may be freely reproduced, distributed, transmitted, modified, built upon, or otherwise used by anyone for any lawful purpose.
spellingShingle Research Article
Parvathaneni, Swetha
Stortchevoi, Alexei
Sommers, Joshua A.
Brosh, Robert M.
Sharma, Sudha
Human RECQ1 Interacts with Ku70/80 and Modulates DNA End-Joining of Double-Strand Breaks
title Human RECQ1 Interacts with Ku70/80 and Modulates DNA End-Joining of Double-Strand Breaks
title_full Human RECQ1 Interacts with Ku70/80 and Modulates DNA End-Joining of Double-Strand Breaks
title_fullStr Human RECQ1 Interacts with Ku70/80 and Modulates DNA End-Joining of Double-Strand Breaks
title_full_unstemmed Human RECQ1 Interacts with Ku70/80 and Modulates DNA End-Joining of Double-Strand Breaks
title_short Human RECQ1 Interacts with Ku70/80 and Modulates DNA End-Joining of Double-Strand Breaks
title_sort human recq1 interacts with ku70/80 and modulates dna end-joining of double-strand breaks
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3641083/
https://www.ncbi.nlm.nih.gov/pubmed/23650516
http://dx.doi.org/10.1371/journal.pone.0062481
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