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Incorporation of fucose into glycans independent of the GDP-fucose transporter SLC35C1 preferentially utilizes salvaged over de novo GDP-fucose

Mutations in the SLC35C1 gene encoding the Golgi GDP-fucose transporter are known to cause leukocyte adhesion deficiency II. However, improvement of fucosylation in leukocyte adhesion deficiency II patients treated with exogenous fucose suggests the existence of an SLC35C1-independent route of GDP-f...

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Autores principales: Skurska, Edyta, Szulc, Bożena, Maszczak-Seneczko, Dorota, Wiktor, Maciej, Wiertelak, Wojciech, Makowiecka, Aleksandra, Olczak, Mariusz
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2022
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Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9304781/
https://www.ncbi.nlm.nih.gov/pubmed/35772493
http://dx.doi.org/10.1016/j.jbc.2022.102206
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author Skurska, Edyta
Szulc, Bożena
Maszczak-Seneczko, Dorota
Wiktor, Maciej
Wiertelak, Wojciech
Makowiecka, Aleksandra
Olczak, Mariusz
author_facet Skurska, Edyta
Szulc, Bożena
Maszczak-Seneczko, Dorota
Wiktor, Maciej
Wiertelak, Wojciech
Makowiecka, Aleksandra
Olczak, Mariusz
author_sort Skurska, Edyta
collection PubMed
description Mutations in the SLC35C1 gene encoding the Golgi GDP-fucose transporter are known to cause leukocyte adhesion deficiency II. However, improvement of fucosylation in leukocyte adhesion deficiency II patients treated with exogenous fucose suggests the existence of an SLC35C1-independent route of GDP-fucose transport, which remains a mystery. To investigate this phenomenon, we developed and characterized a human cell–based model deficient in SLC35C1 activity. The resulting cells were cultured in the presence/absence of exogenous fucose and mannose, followed by examination of fucosylation potential and nucleotide sugar levels. We found that cells displayed low but detectable levels of fucosylation in the absence of SLC35C1. Strikingly, we show that defects in fucosylation were almost completely reversed upon treatment with millimolar concentrations of fucose. Furthermore, we show that even if fucose was supplemented at nanomolar concentrations, it was still incorporated into glycans by these knockout cells. We also found that the SLC35C1-independent transport preferentially utilized GDP-fucose from the salvage pathway over the de novo biogenesis pathway as a source of this substrate. Taken together, our results imply that the Golgi systems of GDP-fucose transport discriminate between substrate pools obtained from different metabolic pathways, which suggests a functional connection between nucleotide sugar transporters and nucleotide sugar synthases.
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spelling pubmed-93047812022-07-25 Incorporation of fucose into glycans independent of the GDP-fucose transporter SLC35C1 preferentially utilizes salvaged over de novo GDP-fucose Skurska, Edyta Szulc, Bożena Maszczak-Seneczko, Dorota Wiktor, Maciej Wiertelak, Wojciech Makowiecka, Aleksandra Olczak, Mariusz J Biol Chem Research Article Mutations in the SLC35C1 gene encoding the Golgi GDP-fucose transporter are known to cause leukocyte adhesion deficiency II. However, improvement of fucosylation in leukocyte adhesion deficiency II patients treated with exogenous fucose suggests the existence of an SLC35C1-independent route of GDP-fucose transport, which remains a mystery. To investigate this phenomenon, we developed and characterized a human cell–based model deficient in SLC35C1 activity. The resulting cells were cultured in the presence/absence of exogenous fucose and mannose, followed by examination of fucosylation potential and nucleotide sugar levels. We found that cells displayed low but detectable levels of fucosylation in the absence of SLC35C1. Strikingly, we show that defects in fucosylation were almost completely reversed upon treatment with millimolar concentrations of fucose. Furthermore, we show that even if fucose was supplemented at nanomolar concentrations, it was still incorporated into glycans by these knockout cells. We also found that the SLC35C1-independent transport preferentially utilized GDP-fucose from the salvage pathway over the de novo biogenesis pathway as a source of this substrate. Taken together, our results imply that the Golgi systems of GDP-fucose transport discriminate between substrate pools obtained from different metabolic pathways, which suggests a functional connection between nucleotide sugar transporters and nucleotide sugar synthases. American Society for Biochemistry and Molecular Biology 2022-06-27 /pmc/articles/PMC9304781/ /pubmed/35772493 http://dx.doi.org/10.1016/j.jbc.2022.102206 Text en © 2022 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Article
Skurska, Edyta
Szulc, Bożena
Maszczak-Seneczko, Dorota
Wiktor, Maciej
Wiertelak, Wojciech
Makowiecka, Aleksandra
Olczak, Mariusz
Incorporation of fucose into glycans independent of the GDP-fucose transporter SLC35C1 preferentially utilizes salvaged over de novo GDP-fucose
title Incorporation of fucose into glycans independent of the GDP-fucose transporter SLC35C1 preferentially utilizes salvaged over de novo GDP-fucose
title_full Incorporation of fucose into glycans independent of the GDP-fucose transporter SLC35C1 preferentially utilizes salvaged over de novo GDP-fucose
title_fullStr Incorporation of fucose into glycans independent of the GDP-fucose transporter SLC35C1 preferentially utilizes salvaged over de novo GDP-fucose
title_full_unstemmed Incorporation of fucose into glycans independent of the GDP-fucose transporter SLC35C1 preferentially utilizes salvaged over de novo GDP-fucose
title_short Incorporation of fucose into glycans independent of the GDP-fucose transporter SLC35C1 preferentially utilizes salvaged over de novo GDP-fucose
title_sort incorporation of fucose into glycans independent of the gdp-fucose transporter slc35c1 preferentially utilizes salvaged over de novo gdp-fucose
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9304781/
https://www.ncbi.nlm.nih.gov/pubmed/35772493
http://dx.doi.org/10.1016/j.jbc.2022.102206
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