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Mice lacking nucleotide sugar transporter SLC35A3 exhibit lethal chondrodysplasia with vertebral anomalies and impaired glycosaminoglycan biosynthesis

SLC35A3 is considered an uridine diphosphate N-acetylglucosamine (UDP-GlcNAc) transporter in mammals and regulates the branching of N-glycans. A missense mutation in SLC35A3 causes complex vertebral malformation (CVM) in cattle. However, the biological functions of SLC35A3 have not been fully clarif...

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Autores principales: Saito, Soichiro, Mizumoto, Shuji, Yonekura, Tsukasa, Yamashita, Rina, Nakano, Kenta, Okubo, Tadashi, Yamada, Shuhei, Okamura, Tadashi, Furuichi, Tatsuya
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2023
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Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10101523/
https://www.ncbi.nlm.nih.gov/pubmed/37053259
http://dx.doi.org/10.1371/journal.pone.0284292
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author Saito, Soichiro
Mizumoto, Shuji
Yonekura, Tsukasa
Yamashita, Rina
Nakano, Kenta
Okubo, Tadashi
Yamada, Shuhei
Okamura, Tadashi
Furuichi, Tatsuya
author_facet Saito, Soichiro
Mizumoto, Shuji
Yonekura, Tsukasa
Yamashita, Rina
Nakano, Kenta
Okubo, Tadashi
Yamada, Shuhei
Okamura, Tadashi
Furuichi, Tatsuya
author_sort Saito, Soichiro
collection PubMed
description SLC35A3 is considered an uridine diphosphate N-acetylglucosamine (UDP-GlcNAc) transporter in mammals and regulates the branching of N-glycans. A missense mutation in SLC35A3 causes complex vertebral malformation (CVM) in cattle. However, the biological functions of SLC35A3 have not been fully clarified. To address these issues, we have established Slc35a3(–/–)mice using CRISPR/Cas9 genome editing system. The generated mutant mice were perinatal lethal and exhibited chondrodysplasia recapitulating CVM-like vertebral anomalies. During embryogenesis, Slc35a3 mRNA was expressed in the presomitic mesoderm of wild-type mice, suggesting that SLC35A3 transports UDP-GlcNAc used for the sugar modification that is essential for somite formation. In the growth plate cartilage of Slc35a3(–/–)embryos, extracellular space was drastically reduced, and many flat proliferative chondrocytes were reshaped. Proliferation, apoptosis and differentiation were not affected in the chondrocytes of Slc35a3(–/–)mice, suggesting that the chondrodysplasia phenotypes were mainly caused by the abnormal extracellular matrix quality. Because these histological abnormalities were similar to those observed in several mutant mice accompanying the impaired glycosaminoglycan (GAG) biosynthesis, GAG levels were measured in the spine and limbs of Slc35a3(–/–)mice using disaccharide composition analysis. Compared with control mice, the amounts of heparan sulfate, keratan sulfate, and chondroitin sulfate/dermatan sulfate, were significantly decreased in Slc35a3(–/–)mice. These findings suggest that SLC35A3 regulates GAG biosynthesis and the chondrodysplasia phenotypes were partially caused by the decreased GAG synthesis. Hence, Slc35a3(−/−) mice would be a useful model for investigating the in vivo roles of SLC35A3 and the pathological mechanisms of SLC35A3-associated diseases.
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spelling pubmed-101015232023-04-14 Mice lacking nucleotide sugar transporter SLC35A3 exhibit lethal chondrodysplasia with vertebral anomalies and impaired glycosaminoglycan biosynthesis Saito, Soichiro Mizumoto, Shuji Yonekura, Tsukasa Yamashita, Rina Nakano, Kenta Okubo, Tadashi Yamada, Shuhei Okamura, Tadashi Furuichi, Tatsuya PLoS One Research Article SLC35A3 is considered an uridine diphosphate N-acetylglucosamine (UDP-GlcNAc) transporter in mammals and regulates the branching of N-glycans. A missense mutation in SLC35A3 causes complex vertebral malformation (CVM) in cattle. However, the biological functions of SLC35A3 have not been fully clarified. To address these issues, we have established Slc35a3(–/–)mice using CRISPR/Cas9 genome editing system. The generated mutant mice were perinatal lethal and exhibited chondrodysplasia recapitulating CVM-like vertebral anomalies. During embryogenesis, Slc35a3 mRNA was expressed in the presomitic mesoderm of wild-type mice, suggesting that SLC35A3 transports UDP-GlcNAc used for the sugar modification that is essential for somite formation. In the growth plate cartilage of Slc35a3(–/–)embryos, extracellular space was drastically reduced, and many flat proliferative chondrocytes were reshaped. Proliferation, apoptosis and differentiation were not affected in the chondrocytes of Slc35a3(–/–)mice, suggesting that the chondrodysplasia phenotypes were mainly caused by the abnormal extracellular matrix quality. Because these histological abnormalities were similar to those observed in several mutant mice accompanying the impaired glycosaminoglycan (GAG) biosynthesis, GAG levels were measured in the spine and limbs of Slc35a3(–/–)mice using disaccharide composition analysis. Compared with control mice, the amounts of heparan sulfate, keratan sulfate, and chondroitin sulfate/dermatan sulfate, were significantly decreased in Slc35a3(–/–)mice. These findings suggest that SLC35A3 regulates GAG biosynthesis and the chondrodysplasia phenotypes were partially caused by the decreased GAG synthesis. Hence, Slc35a3(−/−) mice would be a useful model for investigating the in vivo roles of SLC35A3 and the pathological mechanisms of SLC35A3-associated diseases. Public Library of Science 2023-04-13 /pmc/articles/PMC10101523/ /pubmed/37053259 http://dx.doi.org/10.1371/journal.pone.0284292 Text en © 2023 Saito et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Saito, Soichiro
Mizumoto, Shuji
Yonekura, Tsukasa
Yamashita, Rina
Nakano, Kenta
Okubo, Tadashi
Yamada, Shuhei
Okamura, Tadashi
Furuichi, Tatsuya
Mice lacking nucleotide sugar transporter SLC35A3 exhibit lethal chondrodysplasia with vertebral anomalies and impaired glycosaminoglycan biosynthesis
title Mice lacking nucleotide sugar transporter SLC35A3 exhibit lethal chondrodysplasia with vertebral anomalies and impaired glycosaminoglycan biosynthesis
title_full Mice lacking nucleotide sugar transporter SLC35A3 exhibit lethal chondrodysplasia with vertebral anomalies and impaired glycosaminoglycan biosynthesis
title_fullStr Mice lacking nucleotide sugar transporter SLC35A3 exhibit lethal chondrodysplasia with vertebral anomalies and impaired glycosaminoglycan biosynthesis
title_full_unstemmed Mice lacking nucleotide sugar transporter SLC35A3 exhibit lethal chondrodysplasia with vertebral anomalies and impaired glycosaminoglycan biosynthesis
title_short Mice lacking nucleotide sugar transporter SLC35A3 exhibit lethal chondrodysplasia with vertebral anomalies and impaired glycosaminoglycan biosynthesis
title_sort mice lacking nucleotide sugar transporter slc35a3 exhibit lethal chondrodysplasia with vertebral anomalies and impaired glycosaminoglycan biosynthesis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10101523/
https://www.ncbi.nlm.nih.gov/pubmed/37053259
http://dx.doi.org/10.1371/journal.pone.0284292
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