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Exploring the Physiological Role of Transthyretin in Glucose Metabolism in the Liver

Transthyretin (TTR), a 55 kDa evolutionarily conserved protein, presents altered levels in several conditions, including malnutrition, inflammation, diabetes, and Alzheimer’s Disease. It has been shown that TTR is involved in several functions, such as insulin release from pancreatic β-cells, recove...

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Autores principales: Alemi, Mobina, Oliveira, Ângela, Tavares, Sofia C., Vieira, José Ricardo, Alves, Marco G., Oliveira, Pedro F., Cardoso, Isabel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8200108/
https://www.ncbi.nlm.nih.gov/pubmed/34199897
http://dx.doi.org/10.3390/ijms22116073
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author Alemi, Mobina
Oliveira, Ângela
Tavares, Sofia C.
Vieira, José Ricardo
Alves, Marco G.
Oliveira, Pedro F.
Cardoso, Isabel
author_facet Alemi, Mobina
Oliveira, Ângela
Tavares, Sofia C.
Vieira, José Ricardo
Alves, Marco G.
Oliveira, Pedro F.
Cardoso, Isabel
author_sort Alemi, Mobina
collection PubMed
description Transthyretin (TTR), a 55 kDa evolutionarily conserved protein, presents altered levels in several conditions, including malnutrition, inflammation, diabetes, and Alzheimer’s Disease. It has been shown that TTR is involved in several functions, such as insulin release from pancreatic β-cells, recovery of blood glucose and glucagon levels of the islets of Langerhans, food intake, and body weight. Here, the role of TTR in hepatic glucose metabolism was explored by studying the levels of glucose in mice with different TTR genetic backgrounds, namely with two copies of the TTR gene, TTR+/+; with only one copy, TTR+/−; and without TTR, TTR−/−. Results showed that TTR haploinsufficiency (TTR+/−) leads to higher glucose in both plasma and in primary hepatocyte culture media and lower expression of the influx glucose transporters, GLUT1, GLUT3, and GLUT4. Further, we showed that TTR haploinsufficiency decreases pyruvate kinase M type (PKM) levels in mice livers, by qRT-PCR, but it does not affect the hepatic production of the studied metabolites, as determined by 1H NMR. Finally, we demonstrated that TTR increases mitochondrial density in HepG2 cells and that TTR insufficiency triggers a higher degree of oxidative phosphorylation in the liver. Altogether, these results indicate that TTR contributes to the homeostasis of glucose by regulating the levels of glucose transporters and PKM enzyme and by protecting against mitochondrial oxidative stress.
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spelling pubmed-82001082021-06-14 Exploring the Physiological Role of Transthyretin in Glucose Metabolism in the Liver Alemi, Mobina Oliveira, Ângela Tavares, Sofia C. Vieira, José Ricardo Alves, Marco G. Oliveira, Pedro F. Cardoso, Isabel Int J Mol Sci Article Transthyretin (TTR), a 55 kDa evolutionarily conserved protein, presents altered levels in several conditions, including malnutrition, inflammation, diabetes, and Alzheimer’s Disease. It has been shown that TTR is involved in several functions, such as insulin release from pancreatic β-cells, recovery of blood glucose and glucagon levels of the islets of Langerhans, food intake, and body weight. Here, the role of TTR in hepatic glucose metabolism was explored by studying the levels of glucose in mice with different TTR genetic backgrounds, namely with two copies of the TTR gene, TTR+/+; with only one copy, TTR+/−; and without TTR, TTR−/−. Results showed that TTR haploinsufficiency (TTR+/−) leads to higher glucose in both plasma and in primary hepatocyte culture media and lower expression of the influx glucose transporters, GLUT1, GLUT3, and GLUT4. Further, we showed that TTR haploinsufficiency decreases pyruvate kinase M type (PKM) levels in mice livers, by qRT-PCR, but it does not affect the hepatic production of the studied metabolites, as determined by 1H NMR. Finally, we demonstrated that TTR increases mitochondrial density in HepG2 cells and that TTR insufficiency triggers a higher degree of oxidative phosphorylation in the liver. Altogether, these results indicate that TTR contributes to the homeostasis of glucose by regulating the levels of glucose transporters and PKM enzyme and by protecting against mitochondrial oxidative stress. MDPI 2021-06-04 /pmc/articles/PMC8200108/ /pubmed/34199897 http://dx.doi.org/10.3390/ijms22116073 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Alemi, Mobina
Oliveira, Ângela
Tavares, Sofia C.
Vieira, José Ricardo
Alves, Marco G.
Oliveira, Pedro F.
Cardoso, Isabel
Exploring the Physiological Role of Transthyretin in Glucose Metabolism in the Liver
title Exploring the Physiological Role of Transthyretin in Glucose Metabolism in the Liver
title_full Exploring the Physiological Role of Transthyretin in Glucose Metabolism in the Liver
title_fullStr Exploring the Physiological Role of Transthyretin in Glucose Metabolism in the Liver
title_full_unstemmed Exploring the Physiological Role of Transthyretin in Glucose Metabolism in the Liver
title_short Exploring the Physiological Role of Transthyretin in Glucose Metabolism in the Liver
title_sort exploring the physiological role of transthyretin in glucose metabolism in the liver
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8200108/
https://www.ncbi.nlm.nih.gov/pubmed/34199897
http://dx.doi.org/10.3390/ijms22116073
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