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EGCG Prevents High Fat Diet-Induced Changes in Gut Microbiota, Decreases of DNA Strand Breaks, and Changes in Expression and DNA Methylation of Dnmt1 and MLH1 in C57BL/6J Male Mice

Obesity as a multifactorial disorder involves low-grade inflammation, increased reactive oxygen species incidence, gut microbiota aberrations, and epigenetic consequences. Thus, prevention and therapies with epigenetic active antioxidants, (−)-Epigallocatechin-3-gallate (EGCG), are of increasing int...

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Autores principales: Remely, Marlene, Ferk, Franziska, Sterneder, Sonja, Setayesh, Tahereh, Roth, Sylvia, Kepcija, Tatjana, Noorizadeh, Rahil, Rebhan, Irene, Greunz, Martina, Beckmann, Johanna, Wagner, Karl-Heinz, Knasmüller, Siegfried, Haslberger, Alexander G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi Publishing Corporation 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5241499/
https://www.ncbi.nlm.nih.gov/pubmed/28133504
http://dx.doi.org/10.1155/2017/3079148
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author Remely, Marlene
Ferk, Franziska
Sterneder, Sonja
Setayesh, Tahereh
Roth, Sylvia
Kepcija, Tatjana
Noorizadeh, Rahil
Rebhan, Irene
Greunz, Martina
Beckmann, Johanna
Wagner, Karl-Heinz
Knasmüller, Siegfried
Haslberger, Alexander G.
author_facet Remely, Marlene
Ferk, Franziska
Sterneder, Sonja
Setayesh, Tahereh
Roth, Sylvia
Kepcija, Tatjana
Noorizadeh, Rahil
Rebhan, Irene
Greunz, Martina
Beckmann, Johanna
Wagner, Karl-Heinz
Knasmüller, Siegfried
Haslberger, Alexander G.
author_sort Remely, Marlene
collection PubMed
description Obesity as a multifactorial disorder involves low-grade inflammation, increased reactive oxygen species incidence, gut microbiota aberrations, and epigenetic consequences. Thus, prevention and therapies with epigenetic active antioxidants, (−)-Epigallocatechin-3-gallate (EGCG), are of increasing interest. DNA damage, DNA methylation and gene expression of DNA methyltransferase 1, interleukin 6, and MutL homologue 1 were analyzed in C57BL/6J male mice fed a high-fat diet (HFD) or a control diet (CD) with and without EGCG supplementation. Gut microbiota was analyzed with quantitative real-time polymerase chain reaction. An induction of DNA damage was observed, as a consequence of HFD-feeding, whereas EGCG supplementation decreased DNA damage. HFD-feeding induced a higher inflammatory status. Supplementation reversed these effects, resulting in tissue specific gene expression and methylation patterns of DNA methyltransferase 1 and MutL homologue 1. HFD feeding caused a significant lower bacterial abundance. The Firmicutes/Bacteroidetes ratio is significantly lower in HFD + EGCG but higher in CD + EGCG compared to control groups. The results demonstrate the impact of EGCG on the one hand on gut microbiota which together with dietary components affects host health. On the other hand effects may derive from antioxidative activities as well as epigenetic modifications observed on CpG methylation but also likely to include other epigenetic elements.
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spelling pubmed-52414992017-01-29 EGCG Prevents High Fat Diet-Induced Changes in Gut Microbiota, Decreases of DNA Strand Breaks, and Changes in Expression and DNA Methylation of Dnmt1 and MLH1 in C57BL/6J Male Mice Remely, Marlene Ferk, Franziska Sterneder, Sonja Setayesh, Tahereh Roth, Sylvia Kepcija, Tatjana Noorizadeh, Rahil Rebhan, Irene Greunz, Martina Beckmann, Johanna Wagner, Karl-Heinz Knasmüller, Siegfried Haslberger, Alexander G. Oxid Med Cell Longev Research Article Obesity as a multifactorial disorder involves low-grade inflammation, increased reactive oxygen species incidence, gut microbiota aberrations, and epigenetic consequences. Thus, prevention and therapies with epigenetic active antioxidants, (−)-Epigallocatechin-3-gallate (EGCG), are of increasing interest. DNA damage, DNA methylation and gene expression of DNA methyltransferase 1, interleukin 6, and MutL homologue 1 were analyzed in C57BL/6J male mice fed a high-fat diet (HFD) or a control diet (CD) with and without EGCG supplementation. Gut microbiota was analyzed with quantitative real-time polymerase chain reaction. An induction of DNA damage was observed, as a consequence of HFD-feeding, whereas EGCG supplementation decreased DNA damage. HFD-feeding induced a higher inflammatory status. Supplementation reversed these effects, resulting in tissue specific gene expression and methylation patterns of DNA methyltransferase 1 and MutL homologue 1. HFD feeding caused a significant lower bacterial abundance. The Firmicutes/Bacteroidetes ratio is significantly lower in HFD + EGCG but higher in CD + EGCG compared to control groups. The results demonstrate the impact of EGCG on the one hand on gut microbiota which together with dietary components affects host health. On the other hand effects may derive from antioxidative activities as well as epigenetic modifications observed on CpG methylation but also likely to include other epigenetic elements. Hindawi Publishing Corporation 2017 2017-01-04 /pmc/articles/PMC5241499/ /pubmed/28133504 http://dx.doi.org/10.1155/2017/3079148 Text en Copyright © 2017 Marlene Remely et al. https://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
Remely, Marlene
Ferk, Franziska
Sterneder, Sonja
Setayesh, Tahereh
Roth, Sylvia
Kepcija, Tatjana
Noorizadeh, Rahil
Rebhan, Irene
Greunz, Martina
Beckmann, Johanna
Wagner, Karl-Heinz
Knasmüller, Siegfried
Haslberger, Alexander G.
EGCG Prevents High Fat Diet-Induced Changes in Gut Microbiota, Decreases of DNA Strand Breaks, and Changes in Expression and DNA Methylation of Dnmt1 and MLH1 in C57BL/6J Male Mice
title EGCG Prevents High Fat Diet-Induced Changes in Gut Microbiota, Decreases of DNA Strand Breaks, and Changes in Expression and DNA Methylation of Dnmt1 and MLH1 in C57BL/6J Male Mice
title_full EGCG Prevents High Fat Diet-Induced Changes in Gut Microbiota, Decreases of DNA Strand Breaks, and Changes in Expression and DNA Methylation of Dnmt1 and MLH1 in C57BL/6J Male Mice
title_fullStr EGCG Prevents High Fat Diet-Induced Changes in Gut Microbiota, Decreases of DNA Strand Breaks, and Changes in Expression and DNA Methylation of Dnmt1 and MLH1 in C57BL/6J Male Mice
title_full_unstemmed EGCG Prevents High Fat Diet-Induced Changes in Gut Microbiota, Decreases of DNA Strand Breaks, and Changes in Expression and DNA Methylation of Dnmt1 and MLH1 in C57BL/6J Male Mice
title_short EGCG Prevents High Fat Diet-Induced Changes in Gut Microbiota, Decreases of DNA Strand Breaks, and Changes in Expression and DNA Methylation of Dnmt1 and MLH1 in C57BL/6J Male Mice
title_sort egcg prevents high fat diet-induced changes in gut microbiota, decreases of dna strand breaks, and changes in expression and dna methylation of dnmt1 and mlh1 in c57bl/6j male mice
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5241499/
https://www.ncbi.nlm.nih.gov/pubmed/28133504
http://dx.doi.org/10.1155/2017/3079148
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