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Optimization of Metabolic Oligosaccharide Engineering with Ac 4 GalNAlk and Ac 4 GlcNAlk by an Engineered Pyrophosphorylase.

Authors :
Cioce A
Bineva-Todd G
Agbay AJ
Choi J
Wood TM
Debets MF
Browne WM
Douglas HL
Roustan C
Tastan OY
Kjaer S
Bush JT
Bertozzi CR
Schumann B
Source :
ACS chemical biology [ACS Chem Biol] 2021 Oct 15; Vol. 16 (10), pp. 1961-1967. Date of Electronic Publication: 2021 Apr 09.
Publication Year :
2021

Abstract

Metabolic oligosaccharide engineering (MOE) has fundamentally contributed to our understanding of protein glycosylation. Efficient MOE reagents are activated into nucleotide-sugars by cellular biosynthetic machineries, introduced into glycoproteins and traceable by bioorthogonal chemistry. Despite their widespread use, the metabolic fate of many MOE reagents is only beginning to be mapped. While metabolic interconnectivity can affect probe specificity, poor uptake by biosynthetic salvage pathways may impact probe sensitivity and trigger side reactions. Here, we use metabolic engineering to turn the weak alkyne-tagged MOE reagents Ac <subscript>4</subscript> GalNAlk and Ac <subscript>4</subscript> GlcNAlk into efficient chemical tools to probe protein glycosylation. We find that bypassing a metabolic bottleneck with an engineered version of the pyrophosphorylase AGX1 boosts nucleotide-sugar biosynthesis and increases bioorthogonal cell surface labeling by up to two orders of magnitude. A comparison with known azide-tagged MOE reagents reveals major differences in glycoprotein labeling, substantially expanding the toolbox of chemical glycobiology.

Details

Language :
English
ISSN :
1554-8937
Volume :
16
Issue :
10
Database :
MEDLINE
Journal :
ACS chemical biology
Publication Type :
Academic Journal
Accession number :
33835779
Full Text :
https://doi.org/10.1021/acschembio.1c00034