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Transcription factors KLF15 and PPARδ cooperatively orchestrate genome-wide regulation of lipid metabolism in skeletal muscle

Skeletal muscle dynamically regulates systemic nutrient homeostasis through transcriptional adaptations to physiological cues. In response to changes in the metabolic environment (e.g., alterations in circulating glucose or lipid levels), networks of transcription factors and coregulators are recrui...

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Autores principales: Fan, Liyan, Sweet, David R., Fan, Erica K., Prosdocimo, Domenick A., Madera, Annmarie, Jiang, Zhen, Padmanabhan, Roshan, Haldar, Saptarsi M., Vinayachandran, Vinesh, Jain, Mukesh K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9190004/
https://www.ncbi.nlm.nih.gov/pubmed/35413288
http://dx.doi.org/10.1016/j.jbc.2022.101926
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author Fan, Liyan
Sweet, David R.
Fan, Erica K.
Prosdocimo, Domenick A.
Madera, Annmarie
Jiang, Zhen
Padmanabhan, Roshan
Haldar, Saptarsi M.
Vinayachandran, Vinesh
Jain, Mukesh K.
author_facet Fan, Liyan
Sweet, David R.
Fan, Erica K.
Prosdocimo, Domenick A.
Madera, Annmarie
Jiang, Zhen
Padmanabhan, Roshan
Haldar, Saptarsi M.
Vinayachandran, Vinesh
Jain, Mukesh K.
author_sort Fan, Liyan
collection PubMed
description Skeletal muscle dynamically regulates systemic nutrient homeostasis through transcriptional adaptations to physiological cues. In response to changes in the metabolic environment (e.g., alterations in circulating glucose or lipid levels), networks of transcription factors and coregulators are recruited to specific genomic loci to fine-tune homeostatic gene regulation. Elucidating these mechanisms is of particular interest as these gene regulatory pathways can serve as potential targets to treat metabolic disease. The zinc-finger transcription factor Krüppel-like factor 15 (KLF15) is a critical regulator of metabolic homeostasis; however, its genome-wide distribution in skeletal muscle has not been previously identified. Here, we characterize the KLF15 cistrome in vivo in skeletal muscle and find that the majority of KLF15 binding is localized to distal intergenic regions and associated with genes related to circadian rhythmicity and lipid metabolism. We also identify critical interdependence between KLF15 and the nuclear receptor PPARδ in the regulation of lipid metabolic gene programs. We further demonstrate that KLF15 and PPARδ colocalize genome-wide, physically interact, and are dependent on one another to exert their transcriptional effects on target genes. These findings reveal that skeletal muscle KLF15 plays a critical role in metabolic adaptation through its direct actions on target genes and interactions with other nodal transcription factors such as PPARδ.
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spelling pubmed-91900042022-06-16 Transcription factors KLF15 and PPARδ cooperatively orchestrate genome-wide regulation of lipid metabolism in skeletal muscle Fan, Liyan Sweet, David R. Fan, Erica K. Prosdocimo, Domenick A. Madera, Annmarie Jiang, Zhen Padmanabhan, Roshan Haldar, Saptarsi M. Vinayachandran, Vinesh Jain, Mukesh K. J Biol Chem Accelerated Communication Skeletal muscle dynamically regulates systemic nutrient homeostasis through transcriptional adaptations to physiological cues. In response to changes in the metabolic environment (e.g., alterations in circulating glucose or lipid levels), networks of transcription factors and coregulators are recruited to specific genomic loci to fine-tune homeostatic gene regulation. Elucidating these mechanisms is of particular interest as these gene regulatory pathways can serve as potential targets to treat metabolic disease. The zinc-finger transcription factor Krüppel-like factor 15 (KLF15) is a critical regulator of metabolic homeostasis; however, its genome-wide distribution in skeletal muscle has not been previously identified. Here, we characterize the KLF15 cistrome in vivo in skeletal muscle and find that the majority of KLF15 binding is localized to distal intergenic regions and associated with genes related to circadian rhythmicity and lipid metabolism. We also identify critical interdependence between KLF15 and the nuclear receptor PPARδ in the regulation of lipid metabolic gene programs. We further demonstrate that KLF15 and PPARδ colocalize genome-wide, physically interact, and are dependent on one another to exert their transcriptional effects on target genes. These findings reveal that skeletal muscle KLF15 plays a critical role in metabolic adaptation through its direct actions on target genes and interactions with other nodal transcription factors such as PPARδ. American Society for Biochemistry and Molecular Biology 2022-04-09 /pmc/articles/PMC9190004/ /pubmed/35413288 http://dx.doi.org/10.1016/j.jbc.2022.101926 Text en © 2022 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Accelerated Communication
Fan, Liyan
Sweet, David R.
Fan, Erica K.
Prosdocimo, Domenick A.
Madera, Annmarie
Jiang, Zhen
Padmanabhan, Roshan
Haldar, Saptarsi M.
Vinayachandran, Vinesh
Jain, Mukesh K.
Transcription factors KLF15 and PPARδ cooperatively orchestrate genome-wide regulation of lipid metabolism in skeletal muscle
title Transcription factors KLF15 and PPARδ cooperatively orchestrate genome-wide regulation of lipid metabolism in skeletal muscle
title_full Transcription factors KLF15 and PPARδ cooperatively orchestrate genome-wide regulation of lipid metabolism in skeletal muscle
title_fullStr Transcription factors KLF15 and PPARδ cooperatively orchestrate genome-wide regulation of lipid metabolism in skeletal muscle
title_full_unstemmed Transcription factors KLF15 and PPARδ cooperatively orchestrate genome-wide regulation of lipid metabolism in skeletal muscle
title_short Transcription factors KLF15 and PPARδ cooperatively orchestrate genome-wide regulation of lipid metabolism in skeletal muscle
title_sort transcription factors klf15 and pparδ cooperatively orchestrate genome-wide regulation of lipid metabolism in skeletal muscle
topic Accelerated Communication
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9190004/
https://www.ncbi.nlm.nih.gov/pubmed/35413288
http://dx.doi.org/10.1016/j.jbc.2022.101926
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