Skip to Content
Merck
CN
  • Structural and mechanistic investigations of protein S-glycosyltransferases.

Structural and mechanistic investigations of protein S-glycosyltransferases.

Cell chemical biology (2021-07-21)
Daisuke Fujinami, Chantal V Garcia de Gonzalo, Subhanip Biswas, Yue Hao, Huan Wang, Neha Garg, Tiit Lukk, Satish K Nair, Wilfred A van der Donk
ABSTRACT

Attachment of sugars to nitrogen and oxygen in peptides is ubiquitous in biology, but glycosylation of sulfur atoms has only been recently described. Here, we characterize two S-glycosyltransferases SunS and ThuS that selectively glycosylate one of five Cys residues in their substrate peptides; substitution of this Cys with Ser results in a strong decrease in glycosylation activity. Crystal structures of SunS and ThuS in complex with UDP-glucose or a derivative reveal an unusual architecture in which a glycosyltransferase type A (GTA) fold is decorated with additional domains to support homodimerization. Dimer formation creates an extended cavity for the substrate peptide, drawing functional analogy with O-glycosyltransferases involved in cell wall biosynthesis. This extended cavity contains a sharp bend that may explain the site selectivity of the glycosylation because the target Cys is in a Gly-rich stretch that can accommodate the bend. These studies establish a molecular framework for understanding the unusual S-glycosyltransferases.

MATERIALS
Product Number
Brand
Product Description

Sigma-Aldrich
HEPES, ≥99.5% (titration)
Sigma-Aldrich
Uridine-5′-diphosphoglucose pyrophosphorylase from baker′s yeast, Type X, lyophilized powder, ≥40 units/mg protein
Sigma-Aldrich
Hexokinase from Saccharomyces cerevisiae, Type F-300, lyophilized powder, ≥130 units/mg protein (biuret)
Sigma-Aldrich
IPTG, ≥99% (TLC), ≤0.1% Dioxane