Metabolic flux analysis of the neural cell glycocalyx reveals differential utilization of monosaccharides

Author:

Wong Maurice1ORCID,Xu Gege1,Barboza Mariana21,Maezawa Izumi3,Jin Lee-Way3,Zivkovic Angela4,Lebrilla Carlito B12

Affiliation:

1. Department of Chemistry, University of California, Davis, Davis, CA 95616, USA

2. Department of Anatomy, Physiology & Cell Biology, University of California, Davis, Davis, CA 95616, USA

3. Department of Pathology and Laboratory Medicine, UC Davis Medical Center, Sacramento, CA 95817, USA

4. Department of Nutrition, University of California, Davis, Davis, CA 95616, USA

Abstract

AbstractSaccharides in our diet are major sources of carbon for the formation of biomass such as proteins, lipids, nucleic acids and glycans. Among the dietary monosaccharides, glucose occupies a central role in metabolism, but human blood contains regulated levels of other monosaccharides as well. Their influence on metabolism and how they are utilized have not been explored thoroughly. Applying metabolic flux analysis on glycan synthesis can reveal the pathways that supply glycosylation precursors and provide a snapshot of the metabolic state of the cell. In this study, we traced the incorporation of six 13C uniformly labeled monosaccharides in the N-glycans, O-glycans and glycosphingolipids of both pluripotent and neural NTERA-2 cells. We gathered detailed isotopologue data for hundreds of glycoconjugates using mass spectrometry methods. The contributions of de novo synthesis and direct incorporation pathways for glucose, mannose, fructose, galactose, N-acetylglucosamine and fucose were determined based on their isotope incorporation. Co-feeding studies revealed that fructose incorporation is drastically decreased by the presence of glucose, while mannose and galactose were much less affected. Furthermore, increased sialylation slowed down the turnover of glycans, but fucosylation attenuated this effect. Our results demonstrated that exogenous monosaccharide utilization can vary markedly depending on the cell differentiation state and monosaccharide availability, and that the incorporation of carbons can also differ among different glycan structures. We contend that the analysis of metabolic isotope labeling of glycans can yield new insights about cell metabolism.

Funder

National Institutes of Health

Publisher

Oxford University Press (OUP)

Subject

Biochemistry

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