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FXN Promoter Silencing in the Humanized Mouse Model of Friedreich Ataxia

BACKGROUND: Friedreich ataxia is caused by an expanded GAA triplet-repeat sequence in intron 1 of the FXN gene that results in epigenetic silencing of the FXN promoter. This silencing mechanism is seen in patient-derived lymphoblastoid cells but it remains unknown if it is a widespread phenomenon af...

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Autores principales: Chutake, Yogesh K., Costello, Whitney N., Lam, Christina C., Parikh, Aniruddha C., Hughes, Tamara T., Michalopulos, Michael G., Pook, Mark A., Bidichandani, Sanjay I.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4579136/
https://www.ncbi.nlm.nih.gov/pubmed/26393353
http://dx.doi.org/10.1371/journal.pone.0138437
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author Chutake, Yogesh K.
Costello, Whitney N.
Lam, Christina C.
Parikh, Aniruddha C.
Hughes, Tamara T.
Michalopulos, Michael G.
Pook, Mark A.
Bidichandani, Sanjay I.
author_facet Chutake, Yogesh K.
Costello, Whitney N.
Lam, Christina C.
Parikh, Aniruddha C.
Hughes, Tamara T.
Michalopulos, Michael G.
Pook, Mark A.
Bidichandani, Sanjay I.
author_sort Chutake, Yogesh K.
collection PubMed
description BACKGROUND: Friedreich ataxia is caused by an expanded GAA triplet-repeat sequence in intron 1 of the FXN gene that results in epigenetic silencing of the FXN promoter. This silencing mechanism is seen in patient-derived lymphoblastoid cells but it remains unknown if it is a widespread phenomenon affecting multiple cell types and tissues. METHODOLOGY / PRINCIPAL FINDINGS: The humanized mouse model of Friedreich ataxia (YG8sR), which carries a single transgenic insert of the human FXN gene with an expanded GAA triplet-repeat in intron 1, is deficient for FXN transcript when compared to an isogenic transgenic mouse lacking the expanded repeat (Y47R). We found that in YG8sR the deficiency of FXN transcript extended both upstream and downstream of the expanded GAA triplet-repeat, suggestive of deficient transcriptional initiation. This pattern of deficiency was seen in all tissues tested, irrespective of whether they are known to be affected or spared in disease pathogenesis, in both neuronal and non-neuronal tissues, and in cultured primary fibroblasts. FXN promoter function was directly measured via metabolic labeling of newly synthesized transcripts in fibroblasts, which revealed that the YG8sR mouse was significantly deficient in transcriptional initiation compared to the Y47R mouse. CONCLUSIONS / SIGNIFICANCE: Deficient transcriptional initiation accounts for FXN transcriptional deficiency in the humanized mouse model of Friedreich ataxia, similar to patient-derived cells, and the mechanism underlying promoter silencing in Friedreich ataxia is widespread across multiple cell types and tissues.
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spelling pubmed-45791362015-10-01 FXN Promoter Silencing in the Humanized Mouse Model of Friedreich Ataxia Chutake, Yogesh K. Costello, Whitney N. Lam, Christina C. Parikh, Aniruddha C. Hughes, Tamara T. Michalopulos, Michael G. Pook, Mark A. Bidichandani, Sanjay I. PLoS One Research Article BACKGROUND: Friedreich ataxia is caused by an expanded GAA triplet-repeat sequence in intron 1 of the FXN gene that results in epigenetic silencing of the FXN promoter. This silencing mechanism is seen in patient-derived lymphoblastoid cells but it remains unknown if it is a widespread phenomenon affecting multiple cell types and tissues. METHODOLOGY / PRINCIPAL FINDINGS: The humanized mouse model of Friedreich ataxia (YG8sR), which carries a single transgenic insert of the human FXN gene with an expanded GAA triplet-repeat in intron 1, is deficient for FXN transcript when compared to an isogenic transgenic mouse lacking the expanded repeat (Y47R). We found that in YG8sR the deficiency of FXN transcript extended both upstream and downstream of the expanded GAA triplet-repeat, suggestive of deficient transcriptional initiation. This pattern of deficiency was seen in all tissues tested, irrespective of whether they are known to be affected or spared in disease pathogenesis, in both neuronal and non-neuronal tissues, and in cultured primary fibroblasts. FXN promoter function was directly measured via metabolic labeling of newly synthesized transcripts in fibroblasts, which revealed that the YG8sR mouse was significantly deficient in transcriptional initiation compared to the Y47R mouse. CONCLUSIONS / SIGNIFICANCE: Deficient transcriptional initiation accounts for FXN transcriptional deficiency in the humanized mouse model of Friedreich ataxia, similar to patient-derived cells, and the mechanism underlying promoter silencing in Friedreich ataxia is widespread across multiple cell types and tissues. Public Library of Science 2015-09-22 /pmc/articles/PMC4579136/ /pubmed/26393353 http://dx.doi.org/10.1371/journal.pone.0138437 Text en © 2015 Chutake 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
Chutake, Yogesh K.
Costello, Whitney N.
Lam, Christina C.
Parikh, Aniruddha C.
Hughes, Tamara T.
Michalopulos, Michael G.
Pook, Mark A.
Bidichandani, Sanjay I.
FXN Promoter Silencing in the Humanized Mouse Model of Friedreich Ataxia
title FXN Promoter Silencing in the Humanized Mouse Model of Friedreich Ataxia
title_full FXN Promoter Silencing in the Humanized Mouse Model of Friedreich Ataxia
title_fullStr FXN Promoter Silencing in the Humanized Mouse Model of Friedreich Ataxia
title_full_unstemmed FXN Promoter Silencing in the Humanized Mouse Model of Friedreich Ataxia
title_short FXN Promoter Silencing in the Humanized Mouse Model of Friedreich Ataxia
title_sort fxn promoter silencing in the humanized mouse model of friedreich ataxia
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4579136/
https://www.ncbi.nlm.nih.gov/pubmed/26393353
http://dx.doi.org/10.1371/journal.pone.0138437
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