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CMP-Neu5Ac Hydroxylase Null Mice as a Model for Studying Metabolic Disorders Caused by the Evolutionary Loss of Neu5Gc in Humans

The purpose of this study was to identify the modification/turnover of gene products that are altered in humans due to evolutionary loss of Neu5Gc. CMP-Neu5Ac hydroxylase- (Cmah-) deficient mice show the infiltration of Kupffer cells within liver sinusoids, whereas body and liver weight develop norm...

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Autores principales: Kwon, Deug-Nam, Choi, Yun-Jung, Cho, Ssang-Goo, Park, Chankyu, Seo, Han Geuk, Song, Hyuk, Kim, Jin-Hoi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi Publishing Corporation 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4629002/
https://www.ncbi.nlm.nih.gov/pubmed/26558285
http://dx.doi.org/10.1155/2015/830315
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author Kwon, Deug-Nam
Choi, Yun-Jung
Cho, Ssang-Goo
Park, Chankyu
Seo, Han Geuk
Song, Hyuk
Kim, Jin-Hoi
author_facet Kwon, Deug-Nam
Choi, Yun-Jung
Cho, Ssang-Goo
Park, Chankyu
Seo, Han Geuk
Song, Hyuk
Kim, Jin-Hoi
author_sort Kwon, Deug-Nam
collection PubMed
description The purpose of this study was to identify the modification/turnover of gene products that are altered in humans due to evolutionary loss of Neu5Gc. CMP-Neu5Ac hydroxylase- (Cmah-) deficient mice show the infiltration of Kupffer cells within liver sinusoids, whereas body and liver weight develop normally. Pathway analysis by use of Illumina MouseRef-8 v2 Expression BeadChip provided evidence that a number of biological pathways, including the glycolysis, gluconeogenesis, TCA cycle, and pentose phosphate pathways, as well as glycogen metabolism-related gene expression, were significantly upregulated in Cmah-null mice. The intracellular glucose supply in Cmah-null mice resulted in mitochondrial dysfunction, oxidative stress, and the advanced glycation end products accumulation that could further induce oxidative stress. Finally, low sirtuin-1 and sirtuin-3 gene expressions due to higher NADH/NAD in Cmah-null mice decreased Foxo-1 and MnSOD gene expression, suggesting that oxidative stress may result in mitochondrial dysfunction in Cmah-null mouse. The present study suggests that mice with CMAH deficiency can be taken as an important model for studying metabolic disorders in humans.
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spelling pubmed-46290022015-11-10 CMP-Neu5Ac Hydroxylase Null Mice as a Model for Studying Metabolic Disorders Caused by the Evolutionary Loss of Neu5Gc in Humans Kwon, Deug-Nam Choi, Yun-Jung Cho, Ssang-Goo Park, Chankyu Seo, Han Geuk Song, Hyuk Kim, Jin-Hoi Biomed Res Int Research Article The purpose of this study was to identify the modification/turnover of gene products that are altered in humans due to evolutionary loss of Neu5Gc. CMP-Neu5Ac hydroxylase- (Cmah-) deficient mice show the infiltration of Kupffer cells within liver sinusoids, whereas body and liver weight develop normally. Pathway analysis by use of Illumina MouseRef-8 v2 Expression BeadChip provided evidence that a number of biological pathways, including the glycolysis, gluconeogenesis, TCA cycle, and pentose phosphate pathways, as well as glycogen metabolism-related gene expression, were significantly upregulated in Cmah-null mice. The intracellular glucose supply in Cmah-null mice resulted in mitochondrial dysfunction, oxidative stress, and the advanced glycation end products accumulation that could further induce oxidative stress. Finally, low sirtuin-1 and sirtuin-3 gene expressions due to higher NADH/NAD in Cmah-null mice decreased Foxo-1 and MnSOD gene expression, suggesting that oxidative stress may result in mitochondrial dysfunction in Cmah-null mouse. The present study suggests that mice with CMAH deficiency can be taken as an important model for studying metabolic disorders in humans. Hindawi Publishing Corporation 2015 2015-10-19 /pmc/articles/PMC4629002/ /pubmed/26558285 http://dx.doi.org/10.1155/2015/830315 Text en Copyright © 2015 Deug-Nam Kwon et al. https://creativecommons.org/licenses/by/3.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Kwon, Deug-Nam
Choi, Yun-Jung
Cho, Ssang-Goo
Park, Chankyu
Seo, Han Geuk
Song, Hyuk
Kim, Jin-Hoi
CMP-Neu5Ac Hydroxylase Null Mice as a Model for Studying Metabolic Disorders Caused by the Evolutionary Loss of Neu5Gc in Humans
title CMP-Neu5Ac Hydroxylase Null Mice as a Model for Studying Metabolic Disorders Caused by the Evolutionary Loss of Neu5Gc in Humans
title_full CMP-Neu5Ac Hydroxylase Null Mice as a Model for Studying Metabolic Disorders Caused by the Evolutionary Loss of Neu5Gc in Humans
title_fullStr CMP-Neu5Ac Hydroxylase Null Mice as a Model for Studying Metabolic Disorders Caused by the Evolutionary Loss of Neu5Gc in Humans
title_full_unstemmed CMP-Neu5Ac Hydroxylase Null Mice as a Model for Studying Metabolic Disorders Caused by the Evolutionary Loss of Neu5Gc in Humans
title_short CMP-Neu5Ac Hydroxylase Null Mice as a Model for Studying Metabolic Disorders Caused by the Evolutionary Loss of Neu5Gc in Humans
title_sort cmp-neu5ac hydroxylase null mice as a model for studying metabolic disorders caused by the evolutionary loss of neu5gc in humans
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4629002/
https://www.ncbi.nlm.nih.gov/pubmed/26558285
http://dx.doi.org/10.1155/2015/830315
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