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Genome-wide analysis of DNA methylation identifies novel differentially methylated regions associated with lipid accumulation improved by ethanol extracts of Allium tubersosum and Capsella bursa-pastoris in a cell model

Hepatic steatosis is the most common chronic liver disease in Western countries. Both genetic and environmental factors are known as causes of the disease although their underlying mechanisms have not been fully understood. This study investigated the association of DNA methylation with oleic acid-i...

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Autores principales: Hong, Moonju, Hwang, Jin-Taek, Shin, Eun Ju, Hur, Haeng Jeon, Kang, Keunsoo, Choi, Hyo-Kyoung, Chung, Min-Yu, Chung, Sangwon, Sung, Mi Jeong, Park, Jae-Ho
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6553759/
https://www.ncbi.nlm.nih.gov/pubmed/31170227
http://dx.doi.org/10.1371/journal.pone.0217877
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author Hong, Moonju
Hwang, Jin-Taek
Shin, Eun Ju
Hur, Haeng Jeon
Kang, Keunsoo
Choi, Hyo-Kyoung
Chung, Min-Yu
Chung, Sangwon
Sung, Mi Jeong
Park, Jae-Ho
author_facet Hong, Moonju
Hwang, Jin-Taek
Shin, Eun Ju
Hur, Haeng Jeon
Kang, Keunsoo
Choi, Hyo-Kyoung
Chung, Min-Yu
Chung, Sangwon
Sung, Mi Jeong
Park, Jae-Ho
author_sort Hong, Moonju
collection PubMed
description Hepatic steatosis is the most common chronic liver disease in Western countries. Both genetic and environmental factors are known as causes of the disease although their underlying mechanisms have not been fully understood. This study investigated the association of DNA methylation with oleic acid-induced hepatic steatosis. It also examined effects of food components on DNA methylation in hepatic steatosis. Genome-wide DNA methylation of oleic acid (OA)-induced lipid accumulation in vitro cell model was investigated using reduced representation bisulfite sequencing. Changes of DNA methylation were also analyzed after treatment with food components decreasing OA-induced lipid accumulation in the model. We identified total 81 regions that were hypermethylated by OA but hypomethylated by food components or vice versa. We determined the expression of seven genes proximally located at the selected differentially methylated regions. Expression levels of WDR27, GNAS, DOK7, MCF2L, PRKG1, and CMYA5 were significantly different between control vs OA and OA vs treatment with food components. We demonstrated that DNA methylation was associated with expression of genes in the model of hepatic steatosis. We also found that food components reversely changed DNA methylation induced by OA and alleviated lipid accumulation. These results suggest that DNA methylation is one of the mechanisms causing the hepatic steatosis and its regulation by food components provides insights that may prevent or alleviate lipid accumulation.
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spelling pubmed-65537592019-06-17 Genome-wide analysis of DNA methylation identifies novel differentially methylated regions associated with lipid accumulation improved by ethanol extracts of Allium tubersosum and Capsella bursa-pastoris in a cell model Hong, Moonju Hwang, Jin-Taek Shin, Eun Ju Hur, Haeng Jeon Kang, Keunsoo Choi, Hyo-Kyoung Chung, Min-Yu Chung, Sangwon Sung, Mi Jeong Park, Jae-Ho PLoS One Research Article Hepatic steatosis is the most common chronic liver disease in Western countries. Both genetic and environmental factors are known as causes of the disease although their underlying mechanisms have not been fully understood. This study investigated the association of DNA methylation with oleic acid-induced hepatic steatosis. It also examined effects of food components on DNA methylation in hepatic steatosis. Genome-wide DNA methylation of oleic acid (OA)-induced lipid accumulation in vitro cell model was investigated using reduced representation bisulfite sequencing. Changes of DNA methylation were also analyzed after treatment with food components decreasing OA-induced lipid accumulation in the model. We identified total 81 regions that were hypermethylated by OA but hypomethylated by food components or vice versa. We determined the expression of seven genes proximally located at the selected differentially methylated regions. Expression levels of WDR27, GNAS, DOK7, MCF2L, PRKG1, and CMYA5 were significantly different between control vs OA and OA vs treatment with food components. We demonstrated that DNA methylation was associated with expression of genes in the model of hepatic steatosis. We also found that food components reversely changed DNA methylation induced by OA and alleviated lipid accumulation. These results suggest that DNA methylation is one of the mechanisms causing the hepatic steatosis and its regulation by food components provides insights that may prevent or alleviate lipid accumulation. Public Library of Science 2019-06-06 /pmc/articles/PMC6553759/ /pubmed/31170227 http://dx.doi.org/10.1371/journal.pone.0217877 Text en © 2019 Hong 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Hong, Moonju
Hwang, Jin-Taek
Shin, Eun Ju
Hur, Haeng Jeon
Kang, Keunsoo
Choi, Hyo-Kyoung
Chung, Min-Yu
Chung, Sangwon
Sung, Mi Jeong
Park, Jae-Ho
Genome-wide analysis of DNA methylation identifies novel differentially methylated regions associated with lipid accumulation improved by ethanol extracts of Allium tubersosum and Capsella bursa-pastoris in a cell model
title Genome-wide analysis of DNA methylation identifies novel differentially methylated regions associated with lipid accumulation improved by ethanol extracts of Allium tubersosum and Capsella bursa-pastoris in a cell model
title_full Genome-wide analysis of DNA methylation identifies novel differentially methylated regions associated with lipid accumulation improved by ethanol extracts of Allium tubersosum and Capsella bursa-pastoris in a cell model
title_fullStr Genome-wide analysis of DNA methylation identifies novel differentially methylated regions associated with lipid accumulation improved by ethanol extracts of Allium tubersosum and Capsella bursa-pastoris in a cell model
title_full_unstemmed Genome-wide analysis of DNA methylation identifies novel differentially methylated regions associated with lipid accumulation improved by ethanol extracts of Allium tubersosum and Capsella bursa-pastoris in a cell model
title_short Genome-wide analysis of DNA methylation identifies novel differentially methylated regions associated with lipid accumulation improved by ethanol extracts of Allium tubersosum and Capsella bursa-pastoris in a cell model
title_sort genome-wide analysis of dna methylation identifies novel differentially methylated regions associated with lipid accumulation improved by ethanol extracts of allium tubersosum and capsella bursa-pastoris in a cell model
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6553759/
https://www.ncbi.nlm.nih.gov/pubmed/31170227
http://dx.doi.org/10.1371/journal.pone.0217877
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