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Paradoxical Regulation of Human FGF21 by Both Fasting and Feeding Signals: Is FGF21 a Nutritional Adaptation Factor?

Fibroblast growth factor 21 (FGF21) has recently emerged as a metabolic hormone involved in regulating glucose and lipid metabolism in mouse, but the regulatory mechanisms and actions of FGF21 in humans remain unclear. Here we have investigated the regulatory mechanisms of the human FGF21 gene at th...

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Autores principales: Uebanso, Takashi, Taketani, Yutaka, Yamamoto, Hironori, Amo, Kikuko, Ominami, Hirokazu, Arai, Hidekazu, Takei, Yuichiro, Masuda, Masashi, Tanimura, Ayako, Harada, Nagakatsu, Yamanaka-Okumura, Hisami, Takeda, Eiji
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3148241/
https://www.ncbi.nlm.nih.gov/pubmed/21829679
http://dx.doi.org/10.1371/journal.pone.0022976
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author Uebanso, Takashi
Taketani, Yutaka
Yamamoto, Hironori
Amo, Kikuko
Ominami, Hirokazu
Arai, Hidekazu
Takei, Yuichiro
Masuda, Masashi
Tanimura, Ayako
Harada, Nagakatsu
Yamanaka-Okumura, Hisami
Takeda, Eiji
author_facet Uebanso, Takashi
Taketani, Yutaka
Yamamoto, Hironori
Amo, Kikuko
Ominami, Hirokazu
Arai, Hidekazu
Takei, Yuichiro
Masuda, Masashi
Tanimura, Ayako
Harada, Nagakatsu
Yamanaka-Okumura, Hisami
Takeda, Eiji
author_sort Uebanso, Takashi
collection PubMed
description Fibroblast growth factor 21 (FGF21) has recently emerged as a metabolic hormone involved in regulating glucose and lipid metabolism in mouse, but the regulatory mechanisms and actions of FGF21 in humans remain unclear. Here we have investigated the regulatory mechanisms of the human FGF21 gene at the transcriptional level. A deletion study of the human FGF21 promoter (−1672 to +230 bp) revealed two fasting signals, including peroxisome proliferator-activated receptor α (PPARα) and glucagon signals, that independently induced human FGF21 gene transcription in mouse primary hepatocytes. In addition, two feeding signals, glucose and xylitol, also dose-dependently induced human FGF21 gene transcription and mRNA expression in both human HepG2 cells and mouse primary hepatocytes. FGF21 protein expression and secretion were also induced by high glucose stimulation. The human FGF21 promoter (−1672 to +230 bp) was found to have a carbohydrate-responsive element at −380 to −366 bp, which is distinct from the PPAR response element (PPRE). Knock-down of the carbohydrate response element binding protein by RNAi diminished glucose-induced human FGF21 transcription. Moreover, we found that a region from −555 to −443 bp of the human FGF21 promoter region exerts an important role in the activation of basic transcription. In conclusion, human FGF21 gene expression is paradoxically and independently regulated by both fasting and feeding signals. These regulatory mechanisms suggest that human FGF21 is increased with nutritional crisis, including starvation and overfeeding.
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spelling pubmed-31482412011-08-09 Paradoxical Regulation of Human FGF21 by Both Fasting and Feeding Signals: Is FGF21 a Nutritional Adaptation Factor? Uebanso, Takashi Taketani, Yutaka Yamamoto, Hironori Amo, Kikuko Ominami, Hirokazu Arai, Hidekazu Takei, Yuichiro Masuda, Masashi Tanimura, Ayako Harada, Nagakatsu Yamanaka-Okumura, Hisami Takeda, Eiji PLoS One Research Article Fibroblast growth factor 21 (FGF21) has recently emerged as a metabolic hormone involved in regulating glucose and lipid metabolism in mouse, but the regulatory mechanisms and actions of FGF21 in humans remain unclear. Here we have investigated the regulatory mechanisms of the human FGF21 gene at the transcriptional level. A deletion study of the human FGF21 promoter (−1672 to +230 bp) revealed two fasting signals, including peroxisome proliferator-activated receptor α (PPARα) and glucagon signals, that independently induced human FGF21 gene transcription in mouse primary hepatocytes. In addition, two feeding signals, glucose and xylitol, also dose-dependently induced human FGF21 gene transcription and mRNA expression in both human HepG2 cells and mouse primary hepatocytes. FGF21 protein expression and secretion were also induced by high glucose stimulation. The human FGF21 promoter (−1672 to +230 bp) was found to have a carbohydrate-responsive element at −380 to −366 bp, which is distinct from the PPAR response element (PPRE). Knock-down of the carbohydrate response element binding protein by RNAi diminished glucose-induced human FGF21 transcription. Moreover, we found that a region from −555 to −443 bp of the human FGF21 promoter region exerts an important role in the activation of basic transcription. In conclusion, human FGF21 gene expression is paradoxically and independently regulated by both fasting and feeding signals. These regulatory mechanisms suggest that human FGF21 is increased with nutritional crisis, including starvation and overfeeding. Public Library of Science 2011-08-01 /pmc/articles/PMC3148241/ /pubmed/21829679 http://dx.doi.org/10.1371/journal.pone.0022976 Text en Uebanso et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Uebanso, Takashi
Taketani, Yutaka
Yamamoto, Hironori
Amo, Kikuko
Ominami, Hirokazu
Arai, Hidekazu
Takei, Yuichiro
Masuda, Masashi
Tanimura, Ayako
Harada, Nagakatsu
Yamanaka-Okumura, Hisami
Takeda, Eiji
Paradoxical Regulation of Human FGF21 by Both Fasting and Feeding Signals: Is FGF21 a Nutritional Adaptation Factor?
title Paradoxical Regulation of Human FGF21 by Both Fasting and Feeding Signals: Is FGF21 a Nutritional Adaptation Factor?
title_full Paradoxical Regulation of Human FGF21 by Both Fasting and Feeding Signals: Is FGF21 a Nutritional Adaptation Factor?
title_fullStr Paradoxical Regulation of Human FGF21 by Both Fasting and Feeding Signals: Is FGF21 a Nutritional Adaptation Factor?
title_full_unstemmed Paradoxical Regulation of Human FGF21 by Both Fasting and Feeding Signals: Is FGF21 a Nutritional Adaptation Factor?
title_short Paradoxical Regulation of Human FGF21 by Both Fasting and Feeding Signals: Is FGF21 a Nutritional Adaptation Factor?
title_sort paradoxical regulation of human fgf21 by both fasting and feeding signals: is fgf21 a nutritional adaptation factor?
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3148241/
https://www.ncbi.nlm.nih.gov/pubmed/21829679
http://dx.doi.org/10.1371/journal.pone.0022976
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