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B4GALT1/ST6GAL1 异源二聚体在高尔基体膜中的组装涉及通过带高电荷的表面结构域的横向相互作用。

Assembly of B4GALT1/ST6GAL1 heteromers in the Golgi membranes involves lateral interactions via highly charged surface domains.

机构信息

Faculty of Biochemistry and Molecular Medicine, University of Oulu, Aapistie 7A, 90220 Oulu, Finland.

Université de Lille, CNRS, UMR 8576-UGSF-Unité de Glycobiologie Structurale et Fonctionnelle, 59000 Lille, France.

出版信息

J Biol Chem. 2019 Sep 27;294(39):14383-14393. doi: 10.1074/jbc.RA119.009539. Epub 2019 Aug 8.

Abstract

β-1,4-Galactosyltransferase 1 (B4GALT1) and ST6 β-galactoside α-2,6-sialyltransferase 1 (ST6GAL1) catalyze the successive addition of terminal β-1,4-linked galactose and α-2,6-linked sialic acid to glycans. Their exclusive interaction in the Golgi compartment is a prerequisite for their full catalytic activity, whereas a lack of this interaction is associated with cancers and hypoxia. To date, no structural information exists that shows how glycosyltransferases functionally assemble with each other. Using molecular docking simulations to predict interaction surfaces, along with mutagenesis screens and high-throughput FRET analyses in live cells to validate these predictions, we show here that B4GALT1 and ST6GAL1 interact via highly charged noncatalytic surfaces, leaving the active sites exposed and accessible for donor and acceptor substrate binding. Moreover, we found that the assembly of ST6GAL1 homomers in the endoplasmic reticulum before ST6GAL1 activation in the Golgi utilizes the same noncatalytic surface, whereas B4GALT1 uses its active-site surface for assembly, which silences its catalytic activity. Last, we show that the homomeric and heteromeric B4GALT1/ST6GAL1 complexes can assemble laterally in the Golgi membranes without forming cross-cisternal contacts between enzyme molecules residing in the opposite membranes of each Golgi cisterna. Our results provide detailed mechanistic insights into the regulation of glycosyltransferase interactions, the transitions between B4GALT1 and ST6GAL1 homo- and heteromers in the Golgi, and cooperative B4GALT1/ST6GAL1 function in glycan synthesis.

摘要

β-1,4-半乳糖基转移酶 1(B4GALT1)和 ST6β-半乳糖苷α-2,6-唾液酸转移酶 1(ST6GAL1)催化末端β-1,4 连接的半乳糖和α-2,6 连接的唾液酸连续添加到聚糖上。它们在高尔基体隔室中的独特相互作用是其完全催化活性的先决条件,而缺乏这种相互作用与癌症和缺氧有关。迄今为止,尚无结构信息表明糖基转移酶如何彼此功能性组装。我们使用分子对接模拟来预测相互作用表面,同时进行突变筛选和活细胞中的高通量 FRET 分析来验证这些预测,结果表明 B4GALT1 和 ST6GAL1 通过带高电荷的非催化表面相互作用,使活性位点暴露并可用于供体和受体底物结合。此外,我们发现 ST6GAL1 同型二聚体在高尔基体中 ST6GAL1 激活之前在内质网中组装利用相同的非催化表面,而 B4GALT1 则使用其活性位点表面进行组装,从而使其催化活性沉默。最后,我们表明,B4GALT1/ST6GAL1 同源和异源复合物可以在高尔基体膜中侧向组装,而不会在每个高尔基体小泡的相反膜之间形成酶分子之间的跨膜接触。我们的结果提供了关于糖基转移酶相互作用调节、高尔基体中 B4GALT1 和 ST6GAL1 同源和异源二聚体之间的转变以及 B4GALT1/ST6GAL1 在糖合成中的协同功能的详细机制见解。

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