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LXRα Regulates ChREBPα Transactivity in a Target Gene-Specific Manner through an Agonist-Modulated LBD-LID Interaction

The cholesterol-sensing nuclear receptor liver X receptor (LXR) and the glucose-sensing transcription factor carbohydrate responsive element-binding protein (ChREBP) are central players in regulating glucose and lipid metabolism in the liver. More knowledge of their mechanistic interplay is needed t...

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Autores principales: Fan, Qiong, Nørgaard, Rikke Christine, Grytten, Ivar, Ness, Cecilie Maria, Lucas, Christin, Vekterud, Kristin, Soedling, Helen, Matthews, Jason, Lemma, Roza Berhanu, Gabrielsen, Odd Stokke, Bindesbøll, Christian, Ulven, Stine Marie, Nebb, Hilde Irene, Grønning-Wang, Line Mariann, Sæther, Thomas
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7290792/
https://www.ncbi.nlm.nih.gov/pubmed/32414201
http://dx.doi.org/10.3390/cells9051214
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author Fan, Qiong
Nørgaard, Rikke Christine
Grytten, Ivar
Ness, Cecilie Maria
Lucas, Christin
Vekterud, Kristin
Soedling, Helen
Matthews, Jason
Lemma, Roza Berhanu
Gabrielsen, Odd Stokke
Bindesbøll, Christian
Ulven, Stine Marie
Nebb, Hilde Irene
Grønning-Wang, Line Mariann
Sæther, Thomas
author_facet Fan, Qiong
Nørgaard, Rikke Christine
Grytten, Ivar
Ness, Cecilie Maria
Lucas, Christin
Vekterud, Kristin
Soedling, Helen
Matthews, Jason
Lemma, Roza Berhanu
Gabrielsen, Odd Stokke
Bindesbøll, Christian
Ulven, Stine Marie
Nebb, Hilde Irene
Grønning-Wang, Line Mariann
Sæther, Thomas
author_sort Fan, Qiong
collection PubMed
description The cholesterol-sensing nuclear receptor liver X receptor (LXR) and the glucose-sensing transcription factor carbohydrate responsive element-binding protein (ChREBP) are central players in regulating glucose and lipid metabolism in the liver. More knowledge of their mechanistic interplay is needed to understand their role in pathological conditions like fatty liver disease and insulin resistance. In the current study, LXR and ChREBP co-occupancy was examined by analyzing ChIP-seq datasets from mice livers. LXR and ChREBP interaction was determined by Co-immunoprecipitation (CoIP) and their transactivity was assessed by real-time quantitative polymerase chain reaction (qPCR) of target genes and gene reporter assays. Chromatin binding capacity was determined by ChIP-qPCR assays. Our data show that LXRα and ChREBPα interact physically and show a high co-occupancy at regulatory regions in the mouse genome. LXRα co-activates ChREBPα and regulates ChREBP-specific target genes in vitro and in vivo. This co-activation is dependent on functional recognition elements for ChREBP but not for LXR, indicating that ChREBPα recruits LXRα to chromatin in trans. The two factors interact via their key activation domains; the low glucose inhibitory domain (LID) of ChREBPα and the ligand-binding domain (LBD) of LXRα. While unliganded LXRα co-activates ChREBPα, ligand-bound LXRα surprisingly represses ChREBPα activity on ChREBP-specific target genes. Mechanistically, this is due to a destabilized LXRα:ChREBPα interaction, leading to reduced ChREBP-binding to chromatin and restricted activation of glycolytic and lipogenic target genes. This ligand-driven molecular switch highlights an unappreciated role of LXRα in responding to nutritional cues that was overlooked due to LXR lipogenesis-promoting function.
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spelling pubmed-72907922020-06-17 LXRα Regulates ChREBPα Transactivity in a Target Gene-Specific Manner through an Agonist-Modulated LBD-LID Interaction Fan, Qiong Nørgaard, Rikke Christine Grytten, Ivar Ness, Cecilie Maria Lucas, Christin Vekterud, Kristin Soedling, Helen Matthews, Jason Lemma, Roza Berhanu Gabrielsen, Odd Stokke Bindesbøll, Christian Ulven, Stine Marie Nebb, Hilde Irene Grønning-Wang, Line Mariann Sæther, Thomas Cells Article The cholesterol-sensing nuclear receptor liver X receptor (LXR) and the glucose-sensing transcription factor carbohydrate responsive element-binding protein (ChREBP) are central players in regulating glucose and lipid metabolism in the liver. More knowledge of their mechanistic interplay is needed to understand their role in pathological conditions like fatty liver disease and insulin resistance. In the current study, LXR and ChREBP co-occupancy was examined by analyzing ChIP-seq datasets from mice livers. LXR and ChREBP interaction was determined by Co-immunoprecipitation (CoIP) and their transactivity was assessed by real-time quantitative polymerase chain reaction (qPCR) of target genes and gene reporter assays. Chromatin binding capacity was determined by ChIP-qPCR assays. Our data show that LXRα and ChREBPα interact physically and show a high co-occupancy at regulatory regions in the mouse genome. LXRα co-activates ChREBPα and regulates ChREBP-specific target genes in vitro and in vivo. This co-activation is dependent on functional recognition elements for ChREBP but not for LXR, indicating that ChREBPα recruits LXRα to chromatin in trans. The two factors interact via their key activation domains; the low glucose inhibitory domain (LID) of ChREBPα and the ligand-binding domain (LBD) of LXRα. While unliganded LXRα co-activates ChREBPα, ligand-bound LXRα surprisingly represses ChREBPα activity on ChREBP-specific target genes. Mechanistically, this is due to a destabilized LXRα:ChREBPα interaction, leading to reduced ChREBP-binding to chromatin and restricted activation of glycolytic and lipogenic target genes. This ligand-driven molecular switch highlights an unappreciated role of LXRα in responding to nutritional cues that was overlooked due to LXR lipogenesis-promoting function. MDPI 2020-05-13 /pmc/articles/PMC7290792/ /pubmed/32414201 http://dx.doi.org/10.3390/cells9051214 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Fan, Qiong
Nørgaard, Rikke Christine
Grytten, Ivar
Ness, Cecilie Maria
Lucas, Christin
Vekterud, Kristin
Soedling, Helen
Matthews, Jason
Lemma, Roza Berhanu
Gabrielsen, Odd Stokke
Bindesbøll, Christian
Ulven, Stine Marie
Nebb, Hilde Irene
Grønning-Wang, Line Mariann
Sæther, Thomas
LXRα Regulates ChREBPα Transactivity in a Target Gene-Specific Manner through an Agonist-Modulated LBD-LID Interaction
title LXRα Regulates ChREBPα Transactivity in a Target Gene-Specific Manner through an Agonist-Modulated LBD-LID Interaction
title_full LXRα Regulates ChREBPα Transactivity in a Target Gene-Specific Manner through an Agonist-Modulated LBD-LID Interaction
title_fullStr LXRα Regulates ChREBPα Transactivity in a Target Gene-Specific Manner through an Agonist-Modulated LBD-LID Interaction
title_full_unstemmed LXRα Regulates ChREBPα Transactivity in a Target Gene-Specific Manner through an Agonist-Modulated LBD-LID Interaction
title_short LXRα Regulates ChREBPα Transactivity in a Target Gene-Specific Manner through an Agonist-Modulated LBD-LID Interaction
title_sort lxrα regulates chrebpα transactivity in a target gene-specific manner through an agonist-modulated lbd-lid interaction
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7290792/
https://www.ncbi.nlm.nih.gov/pubmed/32414201
http://dx.doi.org/10.3390/cells9051214
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