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Identification of Genes Involved in the Biosynthesis of the Third and Fourth Sugars of the Methanococcus maripaludis Archaellin N-Linked Tetrasaccharide

机译:鉴定涉及甲烷甲烷球菌古细菌古细菌N连接四糖的第三和第四糖的生物合成的基因

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N-glycosylation is a protein posttranslational modification found in all three domains of life. Many surface proteins in Archaea, including S-layer proteins, pilins, and archaellins (archaeal flagellins) are known to contain N-linked glycans. In Methanococcus maripaludis, the archaellins are modified at multiple sites with an N-linked tetrasaccharide with the structure Sug-1,4-β-ManNAc3NAmA6Thr-1,4-β-GlcNAc3NAcA-1,3-β-GalNAc, where Sug is the unique sugar (5S)-2-acetamido-2,4-dideoxy-5-O-methyl-α-l-erythro-hexos-5-ulo-1,5-pyranose. In this study, four genes—mmp1084, mmp1085, mmp1086, and mmp1087—were targeted to determine their potential involvement of the biosynthesis of the sugar components in the N-glycan, based on bioinformatics analysis and proximity to a number of genes which have been previously demonstrated to be involved in the N-glycosylation pathway. The genes mmp1084 to mmp1087 were shown to be cotranscribed, and in-frame deletions of each gene as well as a Δmmp1086Δmmp1087 double mutant were successfully generated. All mutants were archaellated and motile. Mass spectrometry examination of purified archaella revealed that in Δmmp1084 mutant cells, the threonine linked to the third sugar of the glycan was missing, indicating a putative threonine transferase function of MMP1084. Similar analysis of the archaella of the Δmmp1085 mutant cells demonstrated that the glycan lacked the methyl group at the C-5 position of the terminal sugar, indicating that MMP1085 is a methyltransferase involved in the biosynthesis of this unique sugar. Deletion of the remaining two genes, mmp1086 and mmp1087, either singularly or together, had no effect on the structure of the archaellin N-glycan. Because of their demonstrated involvement in the N-glycosylation pathway, we designated mmp1084 as aglU and mmp1085 as aglV.
机译:N-糖基化是在生活的所有三个域中发现的蛋白质翻译后修饰。已知古细菌中的许多表面蛋白,包括S层蛋白,菌毛蛋白和古细菌蛋白(古细菌鞭毛蛋白)都包含N-连接的聚糖。在马氏甲烷球菌中,古细菌素在多个位点被N-连接的四糖结构Sug-1,4-β-ManNAc3NAmA6Thr-1,4-β-GlcNAc3NAcA-1,3-β-GalNAc修饰,其中Sug是独特的糖(5 S )-2-乙酰氨基-2,4-二脱氧-5- O -甲基-α-l-赤-己基-5-ulo-1 ,5-吡喃糖。在这项研究中,确定了四个基因- mmp1084 mmp1085 mmp1086 mmp1087 ,以确定它们的潜力基于生物信息学分析以及与许多先前已证明参与N-糖基化途径的基因的接近性,N聚糖中糖成分的生物合成参与。已显示基因 mmp1084 mmp1087 共转录,每个基因的读框内缺失以及Δ mmp1086 Δ成功产生了mmp1087 双突变体。所有的突变体都是古细菌和能动的。纯化古细菌的质谱检查显示,在Δ mmp1084 突变细胞中,与聚糖的第三个糖连接的苏氨酸缺失,表明MMP1084的苏氨酸转移酶功能被认为是可能的。对Δ mmp1085 突变细胞的古细菌的类似分析表明,聚糖在末端糖的C-5位置缺少甲基,这表明MMP1085是参与这种独特生物合成的甲基转移酶。糖。删除其余两个基因( mmp1086 mmp1087 )(单独或一起删除)对古菌素N-聚糖的结构没有影响。由于它们被证明参与N-糖基化途径,我们将 mmp1084 命名为 aglU ,将 mmp1085 命名为 aglV

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