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Antagonistic epistasis of Hnf4α and FoxO1 metabolic networks through enhancer interactions in β-cell function

OBJECTIVE: Genetic and acquired abnormalities contribute to pancreatic β-cell failure in diabetes. Transcription factors Hnf4α (MODY1) and FoxO1 are respective examples of these two components and act through β-cell-specific enhancers. However, their relationship is unclear. METHODS: In this report,...

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Autores principales: Kuo, Taiyi, Du, Wen, Miyachi, Yasutaka, Dadi, Prasanna K., Jacobson, David A., Segrè, Daniel, Accili, Domenico
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8225970/
https://www.ncbi.nlm.nih.gov/pubmed/34048961
http://dx.doi.org/10.1016/j.molmet.2021.101256
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author Kuo, Taiyi
Du, Wen
Miyachi, Yasutaka
Dadi, Prasanna K.
Jacobson, David A.
Segrè, Daniel
Accili, Domenico
author_facet Kuo, Taiyi
Du, Wen
Miyachi, Yasutaka
Dadi, Prasanna K.
Jacobson, David A.
Segrè, Daniel
Accili, Domenico
author_sort Kuo, Taiyi
collection PubMed
description OBJECTIVE: Genetic and acquired abnormalities contribute to pancreatic β-cell failure in diabetes. Transcription factors Hnf4α (MODY1) and FoxO1 are respective examples of these two components and act through β-cell-specific enhancers. However, their relationship is unclear. METHODS: In this report, we show by genome-wide interrogation of chromatin modifications that ablation of FoxO1 in mature β-cells enriches active Hnf4α enhancers according to a HOMER analysis. RESULTS: To model the functional significance of this predicted unusual enhancer utilization, we generated single and compound knockouts of FoxO1 and Hnf4α in β-cells. Single knockout of either gene impaired insulin secretion in mechanistically distinct fashions as indicated by their responses to sulfonylurea and calcium fluxes. Surprisingly, the defective β-cell secretory function of either single mutant in hyperglycemic clamps and isolated islets treated with various secretagogues was completely reversed in double mutants lacking FoxO1 and Hnf4α. Gene expression analyses revealed distinct epistatic modalities by which the two transcription factors regulate networks associated with reversal of β-cell dysfunction. An antagonistic network regulating glycolysis, including β-cell “disallowed” genes, and a synergistic network regulating protocadherins emerged as likely mediators of the functional restoration of insulin secretion. CONCLUSIONS: The findings provide evidence of antagonistic epistasis as a model of gene/environment interactions in the pathogenesis of β-cell dysfunction.
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spelling pubmed-82259702021-06-29 Antagonistic epistasis of Hnf4α and FoxO1 metabolic networks through enhancer interactions in β-cell function Kuo, Taiyi Du, Wen Miyachi, Yasutaka Dadi, Prasanna K. Jacobson, David A. Segrè, Daniel Accili, Domenico Mol Metab Original Article OBJECTIVE: Genetic and acquired abnormalities contribute to pancreatic β-cell failure in diabetes. Transcription factors Hnf4α (MODY1) and FoxO1 are respective examples of these two components and act through β-cell-specific enhancers. However, their relationship is unclear. METHODS: In this report, we show by genome-wide interrogation of chromatin modifications that ablation of FoxO1 in mature β-cells enriches active Hnf4α enhancers according to a HOMER analysis. RESULTS: To model the functional significance of this predicted unusual enhancer utilization, we generated single and compound knockouts of FoxO1 and Hnf4α in β-cells. Single knockout of either gene impaired insulin secretion in mechanistically distinct fashions as indicated by their responses to sulfonylurea and calcium fluxes. Surprisingly, the defective β-cell secretory function of either single mutant in hyperglycemic clamps and isolated islets treated with various secretagogues was completely reversed in double mutants lacking FoxO1 and Hnf4α. Gene expression analyses revealed distinct epistatic modalities by which the two transcription factors regulate networks associated with reversal of β-cell dysfunction. An antagonistic network regulating glycolysis, including β-cell “disallowed” genes, and a synergistic network regulating protocadherins emerged as likely mediators of the functional restoration of insulin secretion. CONCLUSIONS: The findings provide evidence of antagonistic epistasis as a model of gene/environment interactions in the pathogenesis of β-cell dysfunction. Elsevier 2021-05-25 /pmc/articles/PMC8225970/ /pubmed/34048961 http://dx.doi.org/10.1016/j.molmet.2021.101256 Text en © 2021 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Article
Kuo, Taiyi
Du, Wen
Miyachi, Yasutaka
Dadi, Prasanna K.
Jacobson, David A.
Segrè, Daniel
Accili, Domenico
Antagonistic epistasis of Hnf4α and FoxO1 metabolic networks through enhancer interactions in β-cell function
title Antagonistic epistasis of Hnf4α and FoxO1 metabolic networks through enhancer interactions in β-cell function
title_full Antagonistic epistasis of Hnf4α and FoxO1 metabolic networks through enhancer interactions in β-cell function
title_fullStr Antagonistic epistasis of Hnf4α and FoxO1 metabolic networks through enhancer interactions in β-cell function
title_full_unstemmed Antagonistic epistasis of Hnf4α and FoxO1 metabolic networks through enhancer interactions in β-cell function
title_short Antagonistic epistasis of Hnf4α and FoxO1 metabolic networks through enhancer interactions in β-cell function
title_sort antagonistic epistasis of hnf4α and foxo1 metabolic networks through enhancer interactions in β-cell function
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8225970/
https://www.ncbi.nlm.nih.gov/pubmed/34048961
http://dx.doi.org/10.1016/j.molmet.2021.101256
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