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Decreased Nuclear Ascorbate Accumulation Accompanied with Altered Genomic Methylation Pattern in Fibroblasts from Arterial Tortuosity Syndrome Patients

Ascorbate requiring Fe(2+)/2-oxoglutarate-dependent dioxygenases located in the nucleoplasm have been shown to participate in epigenetic regulation of gene expression via histone and DNA demethylation. Transport of dehydroascorbic acid is impaired in the endomembranes of fibroblasts from arterial to...

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Autores principales: Németh, Csilla E., Nemoda, Zsófia, Lőw, Péter, Szabó, Pál, Horváth, Erzsébet Z., Willaert, Andy, Boel, Annekatrien, Callewaert, Bert L., Coucke, Paul J., Colombi, Marina, Bánhegyi, Gábor, Margittai, Éva
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6360052/
https://www.ncbi.nlm.nih.gov/pubmed/30800210
http://dx.doi.org/10.1155/2019/8156592
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author Németh, Csilla E.
Nemoda, Zsófia
Lőw, Péter
Szabó, Pál
Horváth, Erzsébet Z.
Willaert, Andy
Boel, Annekatrien
Callewaert, Bert L.
Coucke, Paul J.
Colombi, Marina
Bánhegyi, Gábor
Margittai, Éva
author_facet Németh, Csilla E.
Nemoda, Zsófia
Lőw, Péter
Szabó, Pál
Horváth, Erzsébet Z.
Willaert, Andy
Boel, Annekatrien
Callewaert, Bert L.
Coucke, Paul J.
Colombi, Marina
Bánhegyi, Gábor
Margittai, Éva
author_sort Németh, Csilla E.
collection PubMed
description Ascorbate requiring Fe(2+)/2-oxoglutarate-dependent dioxygenases located in the nucleoplasm have been shown to participate in epigenetic regulation of gene expression via histone and DNA demethylation. Transport of dehydroascorbic acid is impaired in the endomembranes of fibroblasts from arterial tortuosity syndrome (ATS) patients, due to the mutation in the gene coding for glucose transporter GLUT10. We hypothesized that altered nuclear ascorbate concentration might be present in ATS fibroblasts, affecting dioxygenase activity and DNA demethylation. Therefore, our aim was to characterize the subcellular distribution of vitamin C, the global and site-specific changes in 5-methylcytosine and 5-hydroxymethylcytosine levels, and the effect of ascorbate supplementation in control and ATS fibroblast cultures. Diminished nuclear accumulation of ascorbate was found in ATS fibroblasts upon ascorbate or dehydroascorbic acid addition. Analyzing DNA samples of cultured fibroblasts from controls and ATS patients, a lower global 5-hydroxymethylcytosine level was found in ATS fibroblasts, which could not be significantly modified by ascorbate addition. Investigation of the (hydroxy)methylation status of specific regions in six candidate genes related to ascorbate metabolism and function showed that ascorbate addition could stimulate hydroxymethylation and active DNA demethylation at the PPAR-γ gene region in control fibroblasts only. The altered DNA hydroxymethylation patterns in patient cells both at the global level and at specific gene regions accompanied with decreased nuclear accumulation of ascorbate suggests the epigenetic role of vitamin C in the pathomechanism of ATS. The present findings represent the first example for the role of vitamin C transport in epigenetic regulation suggesting that ATS is a compartmentalization disease.
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spelling pubmed-63600522019-02-24 Decreased Nuclear Ascorbate Accumulation Accompanied with Altered Genomic Methylation Pattern in Fibroblasts from Arterial Tortuosity Syndrome Patients Németh, Csilla E. Nemoda, Zsófia Lőw, Péter Szabó, Pál Horváth, Erzsébet Z. Willaert, Andy Boel, Annekatrien Callewaert, Bert L. Coucke, Paul J. Colombi, Marina Bánhegyi, Gábor Margittai, Éva Oxid Med Cell Longev Research Article Ascorbate requiring Fe(2+)/2-oxoglutarate-dependent dioxygenases located in the nucleoplasm have been shown to participate in epigenetic regulation of gene expression via histone and DNA demethylation. Transport of dehydroascorbic acid is impaired in the endomembranes of fibroblasts from arterial tortuosity syndrome (ATS) patients, due to the mutation in the gene coding for glucose transporter GLUT10. We hypothesized that altered nuclear ascorbate concentration might be present in ATS fibroblasts, affecting dioxygenase activity and DNA demethylation. Therefore, our aim was to characterize the subcellular distribution of vitamin C, the global and site-specific changes in 5-methylcytosine and 5-hydroxymethylcytosine levels, and the effect of ascorbate supplementation in control and ATS fibroblast cultures. Diminished nuclear accumulation of ascorbate was found in ATS fibroblasts upon ascorbate or dehydroascorbic acid addition. Analyzing DNA samples of cultured fibroblasts from controls and ATS patients, a lower global 5-hydroxymethylcytosine level was found in ATS fibroblasts, which could not be significantly modified by ascorbate addition. Investigation of the (hydroxy)methylation status of specific regions in six candidate genes related to ascorbate metabolism and function showed that ascorbate addition could stimulate hydroxymethylation and active DNA demethylation at the PPAR-γ gene region in control fibroblasts only. The altered DNA hydroxymethylation patterns in patient cells both at the global level and at specific gene regions accompanied with decreased nuclear accumulation of ascorbate suggests the epigenetic role of vitamin C in the pathomechanism of ATS. The present findings represent the first example for the role of vitamin C transport in epigenetic regulation suggesting that ATS is a compartmentalization disease. Hindawi 2019-01-13 /pmc/articles/PMC6360052/ /pubmed/30800210 http://dx.doi.org/10.1155/2019/8156592 Text en Copyright © 2019 Csilla E. Németh et al. http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Németh, Csilla E.
Nemoda, Zsófia
Lőw, Péter
Szabó, Pál
Horváth, Erzsébet Z.
Willaert, Andy
Boel, Annekatrien
Callewaert, Bert L.
Coucke, Paul J.
Colombi, Marina
Bánhegyi, Gábor
Margittai, Éva
Decreased Nuclear Ascorbate Accumulation Accompanied with Altered Genomic Methylation Pattern in Fibroblasts from Arterial Tortuosity Syndrome Patients
title Decreased Nuclear Ascorbate Accumulation Accompanied with Altered Genomic Methylation Pattern in Fibroblasts from Arterial Tortuosity Syndrome Patients
title_full Decreased Nuclear Ascorbate Accumulation Accompanied with Altered Genomic Methylation Pattern in Fibroblasts from Arterial Tortuosity Syndrome Patients
title_fullStr Decreased Nuclear Ascorbate Accumulation Accompanied with Altered Genomic Methylation Pattern in Fibroblasts from Arterial Tortuosity Syndrome Patients
title_full_unstemmed Decreased Nuclear Ascorbate Accumulation Accompanied with Altered Genomic Methylation Pattern in Fibroblasts from Arterial Tortuosity Syndrome Patients
title_short Decreased Nuclear Ascorbate Accumulation Accompanied with Altered Genomic Methylation Pattern in Fibroblasts from Arterial Tortuosity Syndrome Patients
title_sort decreased nuclear ascorbate accumulation accompanied with altered genomic methylation pattern in fibroblasts from arterial tortuosity syndrome patients
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6360052/
https://www.ncbi.nlm.nih.gov/pubmed/30800210
http://dx.doi.org/10.1155/2019/8156592
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