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UDP-葡萄糖:糖蛋白葡糖基转移酶的单颗粒电子显微镜结构揭示了错误折叠蛋白的一种选择性机制。

Single-particle electron microscopy structure of UDP-glucose:glycoprotein glucosyltransferase suggests a selectivity mechanism for misfolded proteins.

作者信息

Calles-Garcia Daniel, Yang Meng, Soya Naoto, Melero Roberto, Ménade Marie, Ito Yukishige, Vargas Javier, Lukacs Gergely L, Kollman Justin M, Kozlov Guennadi, Gehring Kalle

机构信息

From the Department of Biochemistry, McGill University, Montreal, Quebec H3G0B1, Canada.

Department of Physiology, McGill University, Montreal, Quebec H3G1Y6, Canada.

出版信息

J Biol Chem. 2017 Jul 7;292(27):11499-11507. doi: 10.1074/jbc.M117.789495. Epub 2017 May 10.

Abstract

The enzyme UDP-glucose:glycoprotein glucosyltransferase (UGGT) mediates quality control of glycoproteins in the endoplasmic reticulum by attaching glucose to -linked glycan of misfolded proteins. As a sensor, UGGT ensures that misfolded proteins are recognized by the lectin chaperones and do not leave the secretory pathway. The structure of UGGT and the mechanism of its selectivity for misfolded proteins have been unknown for 25 years. Here, we used negative-stain electron microscopy and small-angle X-ray scattering to determine the structure of UGGT from at 18-Å resolution. Three-dimensional reconstructions revealed a cage-like structure with a large central cavity. Particle classification revealed flexibility that precluded determination of a high-resolution structure. Introduction of biotinylation sites into a fungal UGGT expressed in allowed identification of the catalytic and first thioredoxin-like domains. We also used hydrogen-deuterium exchange mass spectrometry to map the binding site of an accessory protein, Sep15, to the first thioredoxin-like domain. The UGGT structural features identified suggest that the central cavity contains the catalytic site and is lined with hydrophobic surfaces. This enhances the binding of misfolded substrates with exposed hydrophobic residues and excludes folded proteins with hydrophilic surfaces. In conclusion, we have determined the UGGT structure, which enabled us to develop a plausible functional model of the mechanism for UGGT's selectivity for misfolded glycoproteins.

摘要

UDP-葡萄糖:糖蛋白葡糖基转移酶(UGGT)通过将葡萄糖连接到错误折叠蛋白的N-连接聚糖上,在内质网中介导糖蛋白的质量控制。作为一种传感器,UGGT确保错误折叠的蛋白被凝集素伴侣识别,并且不会离开分泌途径。25年来,UGGT的结构及其对错误折叠蛋白的选择性机制一直未知。在这里,我们使用负染色电子显微镜和小角X射线散射,以18埃的分辨率确定了来自的UGGT的结构。三维重建揭示了一种具有大中心腔的笼状结构。颗粒分类显示出的灵活性排除了高分辨率结构的确定。将生物素化位点引入到在中表达的真菌UGGT中,使得能够鉴定催化和第一个硫氧还蛋白样结构域。我们还使用氢-氘交换质谱法绘制了辅助蛋白Sep15与第一个硫氧还蛋白样结构域的结合位点。所确定的UGGT结构特征表明,中心腔包含催化位点,并且内衬疏水表面。这增强了与具有暴露疏水残基的错误折叠底物的结合,并排除了具有亲水表面的折叠蛋白。总之,我们已经确定了UGGT的结构,这使我们能够建立一个关于UGGT对错误折叠糖蛋白选择性机制的合理功能模型。

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