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A single extra copy of Down syndrome critical region 1–4 results in impaired hepatic glucose homeostasis

OBJECTIVES: During fasting, hepatic gluconeogenesis is induced to maintain energy homeostasis. Moreover, abnormal dysregulation of hepatic glucose production is commonly observed in type 2 diabetes. However, the signaling components controlling hepatic glucose production to maintain normal glucose l...

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Autores principales: Seo, Dong Soo, Chau, Gia Cac, Baek, Kwan-Hyuck, Um, Sung Hee
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6407364/
https://www.ncbi.nlm.nih.gov/pubmed/30583978
http://dx.doi.org/10.1016/j.molmet.2018.12.002
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author Seo, Dong Soo
Chau, Gia Cac
Baek, Kwan-Hyuck
Um, Sung Hee
author_facet Seo, Dong Soo
Chau, Gia Cac
Baek, Kwan-Hyuck
Um, Sung Hee
author_sort Seo, Dong Soo
collection PubMed
description OBJECTIVES: During fasting, hepatic gluconeogenesis is induced to maintain energy homeostasis. Moreover, abnormal dysregulation of hepatic glucose production is commonly observed in type 2 diabetes. However, the signaling components controlling hepatic glucose production to maintain normal glucose levels are not fully understood. Here, we examined the physiological role of Down syndrome critical region 1–4 (DSCR1-4), an endogenous calcineurin signaling inhibitor in the liver that mediates metabolic adaptation to fasting. METHODS: We assessed the effect of cyclosporine A, an inhibitor of calcineurin signaling on gluconeogenic gene expression in primary hepatocytes. DSCR1-4 expression was examined in diet- and genetically-induced mouse models of obesity. We also investigated the metabolic phenotype of a single extra copy of DSCR1-4 in transgenic mice and how DSCR1-4 regulates glucose homeostasis in the liver. RESULTS: Treatment with cyclosporin A increased hepatic glucose production and gluconeogenic gene expression. The expression of DSCR1-4 was induced by refeeding and overexpressed in obese mouse livers. Moreover, transgenic mice with a single extra copy of DSCR1-4 exhibited pyruvate intolerance and impaired glucose homeostasis. Mechanistically, DSCR1-4 overexpression increased phosphorylation of the cAMP response element-binding protein, which led to elevated expression levels of gluconeogenic genes and, thus, enhanced hepatic glucose production during fasting. CONCLUSION: A single extra copy of DSCR1-4 results in dysregulated hepatic glucose homeostasis and pyruvate intolerance. Our findings suggest that nutrient-sensitive DSCR1-4 is a novel target for controlling hepatic gluconeogenesis in diabetes.
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spelling pubmed-64073642019-03-21 A single extra copy of Down syndrome critical region 1–4 results in impaired hepatic glucose homeostasis Seo, Dong Soo Chau, Gia Cac Baek, Kwan-Hyuck Um, Sung Hee Mol Metab Brief Communication OBJECTIVES: During fasting, hepatic gluconeogenesis is induced to maintain energy homeostasis. Moreover, abnormal dysregulation of hepatic glucose production is commonly observed in type 2 diabetes. However, the signaling components controlling hepatic glucose production to maintain normal glucose levels are not fully understood. Here, we examined the physiological role of Down syndrome critical region 1–4 (DSCR1-4), an endogenous calcineurin signaling inhibitor in the liver that mediates metabolic adaptation to fasting. METHODS: We assessed the effect of cyclosporine A, an inhibitor of calcineurin signaling on gluconeogenic gene expression in primary hepatocytes. DSCR1-4 expression was examined in diet- and genetically-induced mouse models of obesity. We also investigated the metabolic phenotype of a single extra copy of DSCR1-4 in transgenic mice and how DSCR1-4 regulates glucose homeostasis in the liver. RESULTS: Treatment with cyclosporin A increased hepatic glucose production and gluconeogenic gene expression. The expression of DSCR1-4 was induced by refeeding and overexpressed in obese mouse livers. Moreover, transgenic mice with a single extra copy of DSCR1-4 exhibited pyruvate intolerance and impaired glucose homeostasis. Mechanistically, DSCR1-4 overexpression increased phosphorylation of the cAMP response element-binding protein, which led to elevated expression levels of gluconeogenic genes and, thus, enhanced hepatic glucose production during fasting. CONCLUSION: A single extra copy of DSCR1-4 results in dysregulated hepatic glucose homeostasis and pyruvate intolerance. Our findings suggest that nutrient-sensitive DSCR1-4 is a novel target for controlling hepatic gluconeogenesis in diabetes. Elsevier 2018-12-05 /pmc/articles/PMC6407364/ /pubmed/30583978 http://dx.doi.org/10.1016/j.molmet.2018.12.002 Text en © 2018 The Authors http://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 Brief Communication
Seo, Dong Soo
Chau, Gia Cac
Baek, Kwan-Hyuck
Um, Sung Hee
A single extra copy of Down syndrome critical region 1–4 results in impaired hepatic glucose homeostasis
title A single extra copy of Down syndrome critical region 1–4 results in impaired hepatic glucose homeostasis
title_full A single extra copy of Down syndrome critical region 1–4 results in impaired hepatic glucose homeostasis
title_fullStr A single extra copy of Down syndrome critical region 1–4 results in impaired hepatic glucose homeostasis
title_full_unstemmed A single extra copy of Down syndrome critical region 1–4 results in impaired hepatic glucose homeostasis
title_short A single extra copy of Down syndrome critical region 1–4 results in impaired hepatic glucose homeostasis
title_sort single extra copy of down syndrome critical region 1–4 results in impaired hepatic glucose homeostasis
topic Brief Communication
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6407364/
https://www.ncbi.nlm.nih.gov/pubmed/30583978
http://dx.doi.org/10.1016/j.molmet.2018.12.002
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