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Precision pharmacological reversal of strain-specific diet-induced metabolic syndrome in mice informed by epigenetic and transcriptional regulation

Diet-related metabolic syndrome is the largest contributor to adverse health in the United States. However, the study of gene-environment interactions and their epigenomic and transcriptomic integration is complicated by the lack of environmental and genetic control in humans that is possible in mou...

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Autores principales: Wulfridge, Phillip, Davidovich, Adam, Salvador, Anna C., Manno, Gabrielle C., Tryggvadottir, Rakel, Idrizi, Adrian, Huda, M. Nazmul, Bennett, Brian J., Adams, L. Garry, Hansen, Kasper D., Threadgill, David W., Feinberg, Andrew P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10621921/
https://www.ncbi.nlm.nih.gov/pubmed/37871105
http://dx.doi.org/10.1371/journal.pgen.1010997
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author Wulfridge, Phillip
Davidovich, Adam
Salvador, Anna C.
Manno, Gabrielle C.
Tryggvadottir, Rakel
Idrizi, Adrian
Huda, M. Nazmul
Bennett, Brian J.
Adams, L. Garry
Hansen, Kasper D.
Threadgill, David W.
Feinberg, Andrew P.
author_facet Wulfridge, Phillip
Davidovich, Adam
Salvador, Anna C.
Manno, Gabrielle C.
Tryggvadottir, Rakel
Idrizi, Adrian
Huda, M. Nazmul
Bennett, Brian J.
Adams, L. Garry
Hansen, Kasper D.
Threadgill, David W.
Feinberg, Andrew P.
author_sort Wulfridge, Phillip
collection PubMed
description Diet-related metabolic syndrome is the largest contributor to adverse health in the United States. However, the study of gene-environment interactions and their epigenomic and transcriptomic integration is complicated by the lack of environmental and genetic control in humans that is possible in mouse models. Here we exposed three mouse strains, C57BL/6J (BL6), A/J, and NOD/ShiLtJ (NOD), to a high-fat, high-carbohydrate diet, leading to varying degrees of metabolic syndrome. We then performed transcriptomic and genome-wide DNA methylation analyses for each strain and found overlapping but also highly divergent changes in gene expression and methylation upstream of the discordant metabolic phenotypes. Strain-specific pathway analysis of dietary effects revealed a dysregulation of cholesterol biosynthesis common to all three strains but distinct regulatory networks driving this dysregulation. This suggests a strategy for strain-specific targeted pharmacologic intervention of these upstream regulators informed by epigenetic and transcriptional regulation. As a pilot study, we administered the drug GW4064 to target one of these genotype-dependent networks, the farnesoid X receptor pathway, and found that GW4064 exerts strain-specific protection against dietary effects in BL6, as predicted by our transcriptomic analysis. Furthermore, GW4064 treatment induced inflammatory-related gene expression changes in NOD, indicating a strain-specific effect in its associated toxicities as well as its therapeutic efficacy. This pilot study demonstrates the potential efficacy of precision therapeutics for genotype-informed dietary metabolic intervention and a mouse platform for guiding this approach.
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spelling pubmed-106219212023-11-03 Precision pharmacological reversal of strain-specific diet-induced metabolic syndrome in mice informed by epigenetic and transcriptional regulation Wulfridge, Phillip Davidovich, Adam Salvador, Anna C. Manno, Gabrielle C. Tryggvadottir, Rakel Idrizi, Adrian Huda, M. Nazmul Bennett, Brian J. Adams, L. Garry Hansen, Kasper D. Threadgill, David W. Feinberg, Andrew P. PLoS Genet Research Article Diet-related metabolic syndrome is the largest contributor to adverse health in the United States. However, the study of gene-environment interactions and their epigenomic and transcriptomic integration is complicated by the lack of environmental and genetic control in humans that is possible in mouse models. Here we exposed three mouse strains, C57BL/6J (BL6), A/J, and NOD/ShiLtJ (NOD), to a high-fat, high-carbohydrate diet, leading to varying degrees of metabolic syndrome. We then performed transcriptomic and genome-wide DNA methylation analyses for each strain and found overlapping but also highly divergent changes in gene expression and methylation upstream of the discordant metabolic phenotypes. Strain-specific pathway analysis of dietary effects revealed a dysregulation of cholesterol biosynthesis common to all three strains but distinct regulatory networks driving this dysregulation. This suggests a strategy for strain-specific targeted pharmacologic intervention of these upstream regulators informed by epigenetic and transcriptional regulation. As a pilot study, we administered the drug GW4064 to target one of these genotype-dependent networks, the farnesoid X receptor pathway, and found that GW4064 exerts strain-specific protection against dietary effects in BL6, as predicted by our transcriptomic analysis. Furthermore, GW4064 treatment induced inflammatory-related gene expression changes in NOD, indicating a strain-specific effect in its associated toxicities as well as its therapeutic efficacy. This pilot study demonstrates the potential efficacy of precision therapeutics for genotype-informed dietary metabolic intervention and a mouse platform for guiding this approach. Public Library of Science 2023-10-23 /pmc/articles/PMC10621921/ /pubmed/37871105 http://dx.doi.org/10.1371/journal.pgen.1010997 Text en © 2023 Wulfridge et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://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
Wulfridge, Phillip
Davidovich, Adam
Salvador, Anna C.
Manno, Gabrielle C.
Tryggvadottir, Rakel
Idrizi, Adrian
Huda, M. Nazmul
Bennett, Brian J.
Adams, L. Garry
Hansen, Kasper D.
Threadgill, David W.
Feinberg, Andrew P.
Precision pharmacological reversal of strain-specific diet-induced metabolic syndrome in mice informed by epigenetic and transcriptional regulation
title Precision pharmacological reversal of strain-specific diet-induced metabolic syndrome in mice informed by epigenetic and transcriptional regulation
title_full Precision pharmacological reversal of strain-specific diet-induced metabolic syndrome in mice informed by epigenetic and transcriptional regulation
title_fullStr Precision pharmacological reversal of strain-specific diet-induced metabolic syndrome in mice informed by epigenetic and transcriptional regulation
title_full_unstemmed Precision pharmacological reversal of strain-specific diet-induced metabolic syndrome in mice informed by epigenetic and transcriptional regulation
title_short Precision pharmacological reversal of strain-specific diet-induced metabolic syndrome in mice informed by epigenetic and transcriptional regulation
title_sort precision pharmacological reversal of strain-specific diet-induced metabolic syndrome in mice informed by epigenetic and transcriptional regulation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10621921/
https://www.ncbi.nlm.nih.gov/pubmed/37871105
http://dx.doi.org/10.1371/journal.pgen.1010997
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