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p53 Regulates a miRNA-Fructose Transporter Axis in Brown Adipose Tissue Under Fasting

Active thermogenic adipocytes avidly consume energy substrates like fatty acids and glucose to maintain body temperature upon cold exposure. Despite strong evidence for the involvement of brown adipose tissue (BAT) in controlling systemic energy homeostasis upon nutrient excess, it is unclear how th...

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Autores principales: Reinisch, Isabel, Klymiuk, Ingeborg, Michenthaler, Helene, Moyschewitz, Elisabeth, Galhuber, Markus, Krstic, Jelena, Domingo, Magnus, Zhang, Fangrong, Karbiener, Michael, Vujić, Nemanja, Kratky, Dagmar, Schreiber, Renate, Schupp, Michael, Lenihan-Geels, Georgia, Schulz, Tim J., Malli, Roland, Madl, Tobias, Prokesch, Andreas
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9207587/
https://www.ncbi.nlm.nih.gov/pubmed/35734423
http://dx.doi.org/10.3389/fgene.2022.913030
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author Reinisch, Isabel
Klymiuk, Ingeborg
Michenthaler, Helene
Moyschewitz, Elisabeth
Galhuber, Markus
Krstic, Jelena
Domingo, Magnus
Zhang, Fangrong
Karbiener, Michael
Vujić, Nemanja
Kratky, Dagmar
Schreiber, Renate
Schupp, Michael
Lenihan-Geels, Georgia
Schulz, Tim J.
Malli, Roland
Madl, Tobias
Prokesch, Andreas
author_facet Reinisch, Isabel
Klymiuk, Ingeborg
Michenthaler, Helene
Moyschewitz, Elisabeth
Galhuber, Markus
Krstic, Jelena
Domingo, Magnus
Zhang, Fangrong
Karbiener, Michael
Vujić, Nemanja
Kratky, Dagmar
Schreiber, Renate
Schupp, Michael
Lenihan-Geels, Georgia
Schulz, Tim J.
Malli, Roland
Madl, Tobias
Prokesch, Andreas
author_sort Reinisch, Isabel
collection PubMed
description Active thermogenic adipocytes avidly consume energy substrates like fatty acids and glucose to maintain body temperature upon cold exposure. Despite strong evidence for the involvement of brown adipose tissue (BAT) in controlling systemic energy homeostasis upon nutrient excess, it is unclear how the activity of brown adipocytes is regulated in times of nutrient scarcity. Therefore, this study aimed to scrutinize factors that modulate BAT activity to balance thermogenic and energetic needs upon simultaneous fasting and cold stress. For an unbiased view, we performed transcriptomic and miRNA sequencing analyses of BAT from acutely fasted (24 h) mice under mild cold exposure. Combining these data with in-depth bioinformatic analyses and in vitro gain-of-function experiments, we define a previously undescribed axis of p53 inducing miR-92a-1-5p transcription that is highly upregulated by fasting in thermogenic adipocytes. p53, a fasting-responsive transcription factor, was previously shown to control genes involved in the thermogenic program and miR-92a-1-5p was found to negatively correlate with human BAT activity. Here, we identify fructose transporter Slc2a5 as one direct downstream target of this axis and show that fructose can be taken up by and metabolized in brown adipocytes. In sum, this study delineates a fasting-induced pathway involving p53 that transactivates miR-92a-1-5p, which in turn decreases Slc2a5 expression, and suggests fructose as an energy substrate in thermogenic adipocytes.
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spelling pubmed-92075872022-06-21 p53 Regulates a miRNA-Fructose Transporter Axis in Brown Adipose Tissue Under Fasting Reinisch, Isabel Klymiuk, Ingeborg Michenthaler, Helene Moyschewitz, Elisabeth Galhuber, Markus Krstic, Jelena Domingo, Magnus Zhang, Fangrong Karbiener, Michael Vujić, Nemanja Kratky, Dagmar Schreiber, Renate Schupp, Michael Lenihan-Geels, Georgia Schulz, Tim J. Malli, Roland Madl, Tobias Prokesch, Andreas Front Genet Genetics Active thermogenic adipocytes avidly consume energy substrates like fatty acids and glucose to maintain body temperature upon cold exposure. Despite strong evidence for the involvement of brown adipose tissue (BAT) in controlling systemic energy homeostasis upon nutrient excess, it is unclear how the activity of brown adipocytes is regulated in times of nutrient scarcity. Therefore, this study aimed to scrutinize factors that modulate BAT activity to balance thermogenic and energetic needs upon simultaneous fasting and cold stress. For an unbiased view, we performed transcriptomic and miRNA sequencing analyses of BAT from acutely fasted (24 h) mice under mild cold exposure. Combining these data with in-depth bioinformatic analyses and in vitro gain-of-function experiments, we define a previously undescribed axis of p53 inducing miR-92a-1-5p transcription that is highly upregulated by fasting in thermogenic adipocytes. p53, a fasting-responsive transcription factor, was previously shown to control genes involved in the thermogenic program and miR-92a-1-5p was found to negatively correlate with human BAT activity. Here, we identify fructose transporter Slc2a5 as one direct downstream target of this axis and show that fructose can be taken up by and metabolized in brown adipocytes. In sum, this study delineates a fasting-induced pathway involving p53 that transactivates miR-92a-1-5p, which in turn decreases Slc2a5 expression, and suggests fructose as an energy substrate in thermogenic adipocytes. Frontiers Media S.A. 2022-06-06 /pmc/articles/PMC9207587/ /pubmed/35734423 http://dx.doi.org/10.3389/fgene.2022.913030 Text en Copyright © 2022 Reinisch, Klymiuk, Michenthaler, Moyschewitz, Galhuber, Krstic, Domingo, Zhang, Karbiener, Vujić, Kratky, Schreiber, Schupp, Lenihan-Geels, Schulz, Malli, Madl, Prokesch. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Genetics
Reinisch, Isabel
Klymiuk, Ingeborg
Michenthaler, Helene
Moyschewitz, Elisabeth
Galhuber, Markus
Krstic, Jelena
Domingo, Magnus
Zhang, Fangrong
Karbiener, Michael
Vujić, Nemanja
Kratky, Dagmar
Schreiber, Renate
Schupp, Michael
Lenihan-Geels, Georgia
Schulz, Tim J.
Malli, Roland
Madl, Tobias
Prokesch, Andreas
p53 Regulates a miRNA-Fructose Transporter Axis in Brown Adipose Tissue Under Fasting
title p53 Regulates a miRNA-Fructose Transporter Axis in Brown Adipose Tissue Under Fasting
title_full p53 Regulates a miRNA-Fructose Transporter Axis in Brown Adipose Tissue Under Fasting
title_fullStr p53 Regulates a miRNA-Fructose Transporter Axis in Brown Adipose Tissue Under Fasting
title_full_unstemmed p53 Regulates a miRNA-Fructose Transporter Axis in Brown Adipose Tissue Under Fasting
title_short p53 Regulates a miRNA-Fructose Transporter Axis in Brown Adipose Tissue Under Fasting
title_sort p53 regulates a mirna-fructose transporter axis in brown adipose tissue under fasting
topic Genetics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9207587/
https://www.ncbi.nlm.nih.gov/pubmed/35734423
http://dx.doi.org/10.3389/fgene.2022.913030
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