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XRCC1 Mutation is Associated with PARP1 Hyperactivation and Cerebellar Ataxia

XRCC1 is a molecular scaffold protein that assembles multi-protein complexes involved in DNA single-strand break repair(1,2). Here, we show that biallelic mutations in human XRCC1 are associated with ocular motor apraxia, axonal neuropathy, and progressive cerebellar ataxia. XRCC1-mutant patient cel...

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Autores principales: Hoch, Nicolas, Hanzlikova, Hana, Rulten, Stuart L., Tétreault, Martine, Koumulainen, Emilia, Ju, Limei, Hornyak, Peter, Zeng, Zhihong, Gittens, William, Rey, Stephanie, Staras, Kevin, Mancini, Grazia M.S., McKinnon, Peter J., Wang, Zhao-Qi, Wagner, Justin, Yoon, Grace, Caldecott, Keith W.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5218588/
https://www.ncbi.nlm.nih.gov/pubmed/28002403
http://dx.doi.org/10.1038/nature20790
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author Hoch, Nicolas
Hanzlikova, Hana
Rulten, Stuart L.
Tétreault, Martine
Koumulainen, Emilia
Ju, Limei
Hornyak, Peter
Zeng, Zhihong
Gittens, William
Rey, Stephanie
Staras, Kevin
Mancini, Grazia M.S.
McKinnon, Peter J.
Wang, Zhao-Qi
Wagner, Justin
Yoon, Grace
Caldecott, Keith W.
author_facet Hoch, Nicolas
Hanzlikova, Hana
Rulten, Stuart L.
Tétreault, Martine
Koumulainen, Emilia
Ju, Limei
Hornyak, Peter
Zeng, Zhihong
Gittens, William
Rey, Stephanie
Staras, Kevin
Mancini, Grazia M.S.
McKinnon, Peter J.
Wang, Zhao-Qi
Wagner, Justin
Yoon, Grace
Caldecott, Keith W.
author_sort Hoch, Nicolas
collection PubMed
description XRCC1 is a molecular scaffold protein that assembles multi-protein complexes involved in DNA single-strand break repair(1,2). Here, we show that biallelic mutations in human XRCC1 are associated with ocular motor apraxia, axonal neuropathy, and progressive cerebellar ataxia. XRCC1-mutant patient cells exhibit not only reduced rates of single-strand break repair but also elevated levels of protein ADP-ribosylation; a phenotype recapitulated in a related syndrome caused by mutations in the XRCC1 partner protein PNKP(3-5) and implicating hyperactivation of poly (ADP-ribose) polymerase/s as a cause of cerebellar ataxia. Indeed, remarkably, genetic deletion of Parp1 rescued normal cerebellar ADP-ribose levels and reduced the loss of cerebellar neurons and ataxia in Xrcc1-defective mice, identifying a molecular mechanism by which endogenous single-strand breaks trigger neuropathology. Collectively, these data establish the importance of XRCC1 protein complexes for normal neurological function and identify PARP1 as a therapeutic target in DNA strand break repair-defective disease.
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spelling pubmed-52185882017-06-21 XRCC1 Mutation is Associated with PARP1 Hyperactivation and Cerebellar Ataxia Hoch, Nicolas Hanzlikova, Hana Rulten, Stuart L. Tétreault, Martine Koumulainen, Emilia Ju, Limei Hornyak, Peter Zeng, Zhihong Gittens, William Rey, Stephanie Staras, Kevin Mancini, Grazia M.S. McKinnon, Peter J. Wang, Zhao-Qi Wagner, Justin Yoon, Grace Caldecott, Keith W. Nature Article XRCC1 is a molecular scaffold protein that assembles multi-protein complexes involved in DNA single-strand break repair(1,2). Here, we show that biallelic mutations in human XRCC1 are associated with ocular motor apraxia, axonal neuropathy, and progressive cerebellar ataxia. XRCC1-mutant patient cells exhibit not only reduced rates of single-strand break repair but also elevated levels of protein ADP-ribosylation; a phenotype recapitulated in a related syndrome caused by mutations in the XRCC1 partner protein PNKP(3-5) and implicating hyperactivation of poly (ADP-ribose) polymerase/s as a cause of cerebellar ataxia. Indeed, remarkably, genetic deletion of Parp1 rescued normal cerebellar ADP-ribose levels and reduced the loss of cerebellar neurons and ataxia in Xrcc1-defective mice, identifying a molecular mechanism by which endogenous single-strand breaks trigger neuropathology. Collectively, these data establish the importance of XRCC1 protein complexes for normal neurological function and identify PARP1 as a therapeutic target in DNA strand break repair-defective disease. 2016-12-21 2017-01-05 /pmc/articles/PMC5218588/ /pubmed/28002403 http://dx.doi.org/10.1038/nature20790 Text en http://www.nature.com/authors/editorial_policies/license.html#terms Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use:http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Hoch, Nicolas
Hanzlikova, Hana
Rulten, Stuart L.
Tétreault, Martine
Koumulainen, Emilia
Ju, Limei
Hornyak, Peter
Zeng, Zhihong
Gittens, William
Rey, Stephanie
Staras, Kevin
Mancini, Grazia M.S.
McKinnon, Peter J.
Wang, Zhao-Qi
Wagner, Justin
Yoon, Grace
Caldecott, Keith W.
XRCC1 Mutation is Associated with PARP1 Hyperactivation and Cerebellar Ataxia
title XRCC1 Mutation is Associated with PARP1 Hyperactivation and Cerebellar Ataxia
title_full XRCC1 Mutation is Associated with PARP1 Hyperactivation and Cerebellar Ataxia
title_fullStr XRCC1 Mutation is Associated with PARP1 Hyperactivation and Cerebellar Ataxia
title_full_unstemmed XRCC1 Mutation is Associated with PARP1 Hyperactivation and Cerebellar Ataxia
title_short XRCC1 Mutation is Associated with PARP1 Hyperactivation and Cerebellar Ataxia
title_sort xrcc1 mutation is associated with parp1 hyperactivation and cerebellar ataxia
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5218588/
https://www.ncbi.nlm.nih.gov/pubmed/28002403
http://dx.doi.org/10.1038/nature20790
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