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Metabolic Glycoengineering in hMSC-TERT as a Model for Skeletal Precursors by Using Modified Azide/Alkyne Monosaccharides

Metabolic glycoengineering enables a directed modification of cell surfaces by introducing target molecules to surface proteins displaying new features. Biochemical pathways involving glycans differ in dependence on the cell type; therefore, this technique should be tailored for the best results. We...

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Autores principales: Altmann, Stephan, Mut, Jürgen, Wolf, Natalia, Meißner-Weigl, Jutta, Rudert, Maximilian, Jakob, Franz, Gutmann, Marcus, Lühmann, Tessa, Seibel, Jürgen, Ebert, Regina
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7999278/
https://www.ncbi.nlm.nih.gov/pubmed/33802220
http://dx.doi.org/10.3390/ijms22062820
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author Altmann, Stephan
Mut, Jürgen
Wolf, Natalia
Meißner-Weigl, Jutta
Rudert, Maximilian
Jakob, Franz
Gutmann, Marcus
Lühmann, Tessa
Seibel, Jürgen
Ebert, Regina
author_facet Altmann, Stephan
Mut, Jürgen
Wolf, Natalia
Meißner-Weigl, Jutta
Rudert, Maximilian
Jakob, Franz
Gutmann, Marcus
Lühmann, Tessa
Seibel, Jürgen
Ebert, Regina
author_sort Altmann, Stephan
collection PubMed
description Metabolic glycoengineering enables a directed modification of cell surfaces by introducing target molecules to surface proteins displaying new features. Biochemical pathways involving glycans differ in dependence on the cell type; therefore, this technique should be tailored for the best results. We characterized metabolic glycoengineering in telomerase-immortalized human mesenchymal stromal cells (hMSC-TERT) as a model for primary hMSC, to investigate its applicability in TERT-modified cell lines. The metabolic incorporation of N-azidoacetylmannosamine (Ac(4)ManNAz) and N-alkyneacetylmannosamine (Ac(4)ManNAl) into the glycocalyx as a first step in the glycoengineering process revealed no adverse effects on cell viability or gene expression, and the in vitro multipotency (osteogenic and adipogenic differentiation potential) was maintained under these adapted culture conditions. In the second step, glycoengineered cells were modified with fluorescent dyes using Cu-mediated click chemistry. In these analyses, the two mannose derivatives showed superior incorporation efficiencies compared to glucose and galactose isomers. In time-dependent experiments, the incorporation of Ac(4)ManNAz was detectable for up to six days while Ac(4)ManNAl-derived metabolites were absent after two days. Taken together, these findings demonstrate the successful metabolic glycoengineering of immortalized hMSC resulting in transient cell surface modifications, and thus present a useful model to address different scientific questions regarding glycosylation processes in skeletal precursors.
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spelling pubmed-79992782021-03-28 Metabolic Glycoengineering in hMSC-TERT as a Model for Skeletal Precursors by Using Modified Azide/Alkyne Monosaccharides Altmann, Stephan Mut, Jürgen Wolf, Natalia Meißner-Weigl, Jutta Rudert, Maximilian Jakob, Franz Gutmann, Marcus Lühmann, Tessa Seibel, Jürgen Ebert, Regina Int J Mol Sci Article Metabolic glycoengineering enables a directed modification of cell surfaces by introducing target molecules to surface proteins displaying new features. Biochemical pathways involving glycans differ in dependence on the cell type; therefore, this technique should be tailored for the best results. We characterized metabolic glycoengineering in telomerase-immortalized human mesenchymal stromal cells (hMSC-TERT) as a model for primary hMSC, to investigate its applicability in TERT-modified cell lines. The metabolic incorporation of N-azidoacetylmannosamine (Ac(4)ManNAz) and N-alkyneacetylmannosamine (Ac(4)ManNAl) into the glycocalyx as a first step in the glycoengineering process revealed no adverse effects on cell viability or gene expression, and the in vitro multipotency (osteogenic and adipogenic differentiation potential) was maintained under these adapted culture conditions. In the second step, glycoengineered cells were modified with fluorescent dyes using Cu-mediated click chemistry. In these analyses, the two mannose derivatives showed superior incorporation efficiencies compared to glucose and galactose isomers. In time-dependent experiments, the incorporation of Ac(4)ManNAz was detectable for up to six days while Ac(4)ManNAl-derived metabolites were absent after two days. Taken together, these findings demonstrate the successful metabolic glycoengineering of immortalized hMSC resulting in transient cell surface modifications, and thus present a useful model to address different scientific questions regarding glycosylation processes in skeletal precursors. MDPI 2021-03-10 /pmc/articles/PMC7999278/ /pubmed/33802220 http://dx.doi.org/10.3390/ijms22062820 Text en © 2021 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Altmann, Stephan
Mut, Jürgen
Wolf, Natalia
Meißner-Weigl, Jutta
Rudert, Maximilian
Jakob, Franz
Gutmann, Marcus
Lühmann, Tessa
Seibel, Jürgen
Ebert, Regina
Metabolic Glycoengineering in hMSC-TERT as a Model for Skeletal Precursors by Using Modified Azide/Alkyne Monosaccharides
title Metabolic Glycoengineering in hMSC-TERT as a Model for Skeletal Precursors by Using Modified Azide/Alkyne Monosaccharides
title_full Metabolic Glycoengineering in hMSC-TERT as a Model for Skeletal Precursors by Using Modified Azide/Alkyne Monosaccharides
title_fullStr Metabolic Glycoengineering in hMSC-TERT as a Model for Skeletal Precursors by Using Modified Azide/Alkyne Monosaccharides
title_full_unstemmed Metabolic Glycoengineering in hMSC-TERT as a Model for Skeletal Precursors by Using Modified Azide/Alkyne Monosaccharides
title_short Metabolic Glycoengineering in hMSC-TERT as a Model for Skeletal Precursors by Using Modified Azide/Alkyne Monosaccharides
title_sort metabolic glycoengineering in hmsc-tert as a model for skeletal precursors by using modified azide/alkyne monosaccharides
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7999278/
https://www.ncbi.nlm.nih.gov/pubmed/33802220
http://dx.doi.org/10.3390/ijms22062820
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