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首页> 外文期刊>Biochemistry >In vitro evidence for the dual function of Alg2 and Alg11: Essential mannosyltransferases in N-linked glycoprotein biosynthesis
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In vitro evidence for the dual function of Alg2 and Alg11: Essential mannosyltransferases in N-linked glycoprotein biosynthesis

机译:Alg2和Alg11双重功能的体外证据:N联糖蛋白生物合成中必需的甘露糖基转移酶

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摘要

The biosynthesis of asparagine-linked glycoproteins utilizes a dolichylpyrophosphate-linked glycosyl donor (Dol-PP-GlcNAc(2)Man(9)Glc(3)), which is assembled by the series of membrane-bound glycosyltransferases that comprise the dolichol pathway. This biosynthetic pathway is highly conserved throughout eukaryotic evolution. While complementary genetic and bioinformatic approaches have enabled identification of most of the dolichol pathway enzymes in Saccharomyces cerevisiae, the roles of two of the mannosyltransferases in the pathway, Alg2 and Alg11, have remained ambiguous because these enzymes appear to catalyze only two of the remaining four unannotated transformations. To address this issue, a biochemical approach was taken using recombinant Alg2 and Alg11 from S. cerevisiae and defined dolichylpyrophosphate-linked substrates. A cell-membrane fraction isolated from Escherichia coli overexpressing thioredoxin-tagged Alg2 was used to demonstrate that this enzyme actually carries out an alpha 1,3-mannosylation, followed by an alpha 1,6-mannosylation, to form the first branched pentasaccharide intermediate of the pathway. Then, using thioredoxin-tagged Alg2 for the chemoenzymatic synthesis of the dolichylpyrophosphate pentasaccharide, it was thus possible to define the biochemical function of Alg11, which is to catalyze the next two sequential alpha 1,2-mannosylations. The elucidation of the dual function of each of these enzymes thus completes the identification of the entire ensemble of glycosyltransferases that comprise the dolichol pathway.
机译:与天冬酰胺连接的糖蛋白的生物合成利用了与二苯甲基焦磷酸连接的糖基供体(Dol-PP-GlcNAc(2)Man(9)Glc(3)),该供体由一系列构成膜结合的糖基转移酶组成,构成了多酚途径。该生物合成途径在整个真核生物进化过程中高度保守。尽管互补的遗传和生物信息学方法已能够鉴定酿酒酵母中的大多数多醇途径酶,但该途径中的两种甘露糖基转移酶Alg2和Alg11的作用仍不明确,因为这些酶似乎仅催化其余四种中的两种无注释的转换。为了解决这个问题,采用了一种生物化学方法,使用了来自酿酒酵母的重组Alg2和Alg11,并确定了与磷酸二烷基焦磷酸酯相连的底物。从大肠杆菌中过表达硫氧还蛋白标记的Alg2的细胞膜级分用于证明该酶实际上进行了α1,3-甘露糖基化,然后进行了α1,6-甘露糖基化,从而形成了途径。然后,使用硫氧还蛋白标记的Alg2进行多酚基焦磷酸五糖的化学酶促合成,因此可以定义Alg11的生化功能,即催化接下来的两个连续的α1,2-甘露糖基化。因此,对每种酶的双重功能的阐明完成了对包含多氢醇途径的糖基转移酶的整体的鉴定。

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