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Hepatocyte-Specific Phgdh-Deficient Mice Culminate in Mild Obesity, Insulin Resistance, and Enhanced Vulnerability to Protein Starvation

l-Serine (Ser) is synthesized de novo from 3-phosphoglycerate via the phosphorylated pathway committed by phosphoglycerate dehydrogenase (Phgdh). A previous study reported that feeding a protein-free diet increased the enzymatic activity of Phgdh in the liver and enhanced Ser synthesis in the rat li...

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Autores principales: Hamano, Momoko, Esaki, Kayoko, Moriyasu, Kazuki, Yasuda, Tokio, Mohri, Sinya, Tashiro, Kosuke, Hirabayashi, Yoshio, Furuya, Shigeki
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8537398/
https://www.ncbi.nlm.nih.gov/pubmed/34684470
http://dx.doi.org/10.3390/nu13103468
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author Hamano, Momoko
Esaki, Kayoko
Moriyasu, Kazuki
Yasuda, Tokio
Mohri, Sinya
Tashiro, Kosuke
Hirabayashi, Yoshio
Furuya, Shigeki
author_facet Hamano, Momoko
Esaki, Kayoko
Moriyasu, Kazuki
Yasuda, Tokio
Mohri, Sinya
Tashiro, Kosuke
Hirabayashi, Yoshio
Furuya, Shigeki
author_sort Hamano, Momoko
collection PubMed
description l-Serine (Ser) is synthesized de novo from 3-phosphoglycerate via the phosphorylated pathway committed by phosphoglycerate dehydrogenase (Phgdh). A previous study reported that feeding a protein-free diet increased the enzymatic activity of Phgdh in the liver and enhanced Ser synthesis in the rat liver. However, the nutritional and physiological functions of Ser synthesis in the liver remain unclear. To clarify the physiological significance of de novo Ser synthesis in the liver, we generated liver hepatocyte-specific Phgdh KO (LKO) mice using an albumin-Cre driver. The LKO mice exhibited a significant gain in body weight compared to Floxed controls at 23 weeks of age and impaired systemic glucose metabolism, which was accompanied by diminished insulin/IGF signaling. Although LKO mice had no apparent defects in steatosis, the molecular signatures of inflammation and stress responses were evident in the liver of LKO mice. Moreover, LKO mice were more vulnerable to protein starvation than the Floxed mice. These observations demonstrate that Phgdh-dependent de novo Ser synthesis in liver hepatocytes contributes to the maintenance of systemic glucose tolerance, suppression of inflammatory response, and resistance to protein starvation.
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spelling pubmed-85373982021-10-24 Hepatocyte-Specific Phgdh-Deficient Mice Culminate in Mild Obesity, Insulin Resistance, and Enhanced Vulnerability to Protein Starvation Hamano, Momoko Esaki, Kayoko Moriyasu, Kazuki Yasuda, Tokio Mohri, Sinya Tashiro, Kosuke Hirabayashi, Yoshio Furuya, Shigeki Nutrients Article l-Serine (Ser) is synthesized de novo from 3-phosphoglycerate via the phosphorylated pathway committed by phosphoglycerate dehydrogenase (Phgdh). A previous study reported that feeding a protein-free diet increased the enzymatic activity of Phgdh in the liver and enhanced Ser synthesis in the rat liver. However, the nutritional and physiological functions of Ser synthesis in the liver remain unclear. To clarify the physiological significance of de novo Ser synthesis in the liver, we generated liver hepatocyte-specific Phgdh KO (LKO) mice using an albumin-Cre driver. The LKO mice exhibited a significant gain in body weight compared to Floxed controls at 23 weeks of age and impaired systemic glucose metabolism, which was accompanied by diminished insulin/IGF signaling. Although LKO mice had no apparent defects in steatosis, the molecular signatures of inflammation and stress responses were evident in the liver of LKO mice. Moreover, LKO mice were more vulnerable to protein starvation than the Floxed mice. These observations demonstrate that Phgdh-dependent de novo Ser synthesis in liver hepatocytes contributes to the maintenance of systemic glucose tolerance, suppression of inflammatory response, and resistance to protein starvation. MDPI 2021-09-29 /pmc/articles/PMC8537398/ /pubmed/34684470 http://dx.doi.org/10.3390/nu13103468 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
Hamano, Momoko
Esaki, Kayoko
Moriyasu, Kazuki
Yasuda, Tokio
Mohri, Sinya
Tashiro, Kosuke
Hirabayashi, Yoshio
Furuya, Shigeki
Hepatocyte-Specific Phgdh-Deficient Mice Culminate in Mild Obesity, Insulin Resistance, and Enhanced Vulnerability to Protein Starvation
title Hepatocyte-Specific Phgdh-Deficient Mice Culminate in Mild Obesity, Insulin Resistance, and Enhanced Vulnerability to Protein Starvation
title_full Hepatocyte-Specific Phgdh-Deficient Mice Culminate in Mild Obesity, Insulin Resistance, and Enhanced Vulnerability to Protein Starvation
title_fullStr Hepatocyte-Specific Phgdh-Deficient Mice Culminate in Mild Obesity, Insulin Resistance, and Enhanced Vulnerability to Protein Starvation
title_full_unstemmed Hepatocyte-Specific Phgdh-Deficient Mice Culminate in Mild Obesity, Insulin Resistance, and Enhanced Vulnerability to Protein Starvation
title_short Hepatocyte-Specific Phgdh-Deficient Mice Culminate in Mild Obesity, Insulin Resistance, and Enhanced Vulnerability to Protein Starvation
title_sort hepatocyte-specific phgdh-deficient mice culminate in mild obesity, insulin resistance, and enhanced vulnerability to protein starvation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8537398/
https://www.ncbi.nlm.nih.gov/pubmed/34684470
http://dx.doi.org/10.3390/nu13103468
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