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设计的α1,6-岩藻糖苷酶突变体能直接在完整的 N-糖肽和 N-糖蛋白上进行核心岩藻糖基化。

Designer α1,6-Fucosidase Mutants Enable Direct Core Fucosylation of Intact N-Glycopeptides and N-Glycoproteins.

机构信息

Department of Chemistry and Biochemistry, University of Maryland , 8051 Regents Drive, College Park, Maryland 20742, United States.

出版信息

J Am Chem Soc. 2017 Oct 25;139(42):15074-15087. doi: 10.1021/jacs.7b07906. Epub 2017 Oct 16.

Abstract

Core fucosylation of N-glycoproteins plays a crucial role in modulating the biological functions of glycoproteins. Yet, the synthesis of structurally well-defined, core-fucosylated glycoproteins remains a challenging task due to the complexity in multistep chemical synthesis or the inability of the biosynthetic α1,6-fucosyltransferase (FUT8) to directly fucosylate full-size mature N-glycans in a chemoenzymatic approach. We report in this paper the design and generation of potential α1,6-fucosynthase and fucoligase for direct core fucosylation of intact N-glycoproteins. We found that mutation at the nucleophilic residue (D200) did not provide a typical glycosynthase from this bacterial enzyme, but several mutants with mutation at the general acid/base residue E274 of the Lactobacillus casei α1,6-fucosidase, including E274A, E274S, and E274G, acted as efficient glycoligases that could fucosylate a wide variety of complex N-glycopeptides and intact glycoproteins by using α-fucosyl fluoride as a simple donor substrate. Studies on the substrate specificity revealed that the α1,6-fucosidase mutants could introduce an α1,6-fucose moiety specifically at the Asn-linked GlcNAc moiety not only to GlcNAc-peptide but also to high-mannose and complex-type N-glycans in the context of N-glycopeptides, N-glycoproteins, and intact antibodies. This discovery opens a new avenue to a wide variety of homogeneous, core-fucosylated N-glycopeptides and N-glycoproteins that are hitherto difficult to obtain for structural and functional studies.

摘要

糖蛋白的核心岩藻糖化在调节糖蛋白的生物学功能方面起着至关重要的作用。然而,由于多步化学合成的复杂性或生物合成的α1,6-岩藻糖基转移酶(FUT8)无法在化学酶法中直接岩藻糖化全尺寸成熟 N-聚糖,因此合成结构明确的、核心岩藻糖化的糖蛋白仍然是一项具有挑战性的任务。本文报道了设计和生成潜在的α1,6-岩藻糖合成酶和岩藻糖苷酶,用于直接对完整的 N-糖蛋白进行核心岩藻糖化。我们发现,亲核残基(D200)的突变并没有为该细菌酶提供典型的糖基合成酶,但该酶的几个突变体,包括 L. casei α1,6-岩藻糖苷酶的广义酸碱残基 E274 的突变体 E274A、E274S 和 E274G,是有效的糖基转移酶,可通过使用α-岩藻糖氟化物作为简单供体底物,岩藻糖化各种复杂的 N-糖肽和完整的糖蛋白。对底物特异性的研究表明,α1,6-岩藻糖苷酶突变体不仅可以在 GlcNAc-肽上,而且可以在 N-糖肽、N-糖蛋白和完整抗体中的高甘露糖和复杂型 N-聚糖的背景下,将α1,6-岩藻糖基特别引入到 Asn 连接的 GlcNAc 部分。这一发现为获得迄今为止难以获得的结构和功能研究的各种均质、核心岩藻糖化的 N-糖肽和 N-糖蛋白开辟了新途径。

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