Aoki Kazuhiro, Perlman Mindy, Lim Jae-Min, Cantu Rebecca, Wells Lance, Tiemeyer Michael
Complex Carbohydrate Research Center, University of Georgia, Athens, Georgia 30602, USA.
J Biol Chem. 2007 Mar 23;282(12):9127-42. doi: 10.1074/jbc.M606711200. Epub 2007 Jan 29.
The structural diversity of glycoprotein N-linked oligosaccharides is determined by the expression and regulation of glycosyltransferase activities and by the availability of the appropriate acceptor/donor substrates. Cells in different tissues and in different developmental stages utilize these control points to manifest unique glycan expression patterns in response to their surroundings. The activity of a Toll-like receptor, called Tollo/Toll-8, induces a pattern of incompletely defined, but neural specific, glycan expression in the Drosophila embryo. Understanding the full extent of the changes in glycan expression that result from altered Tollo/Toll-8 signaling requires characterization of the complete N-linked glycan profile of both wild-type and mutant embryos. N-Linked glycans harvested from wild-type or mutant embryos were subjected to direct structural analysis by analytic and preparative high pressure liquid chromatography, by multidimensional mass spectrometry, and by exoglycosidase digestion, revealing a predominance of high mannose and paucimannose glycans. Di-, mono-, and nonfucosylated forms of hybrid, complex biantennary, and triantennary glycans account for 12% of the total wild-type glycan profile. Two sialylated glycans bearing N-acetylneuraminic acid were detected, the first direct demonstration of this modification in Drosophila. Glycan profiles change during normal development consistent with increasing alpha-mannosidase II and core fucosyl-transferase enzyme activities, and with decreasing activity of the Fused lobes processing hexosaminidase. In tollo/toll-8 mutants, a dramatic, expected loss of difucosylated glycans is accompanied by unexpected decreases in monofucosylated and nonfucosylated hybrid glycans and increases in some nonfucosylated paucimannose and biantennary glycans. Therefore, tollo/toll-8 signaling influences flux through several processing steps that affect the maturation of N-linked glycans.
糖蛋白N-连接寡糖的结构多样性由糖基转移酶活性的表达和调控以及合适的受体/供体底物的可用性决定。不同组织和不同发育阶段的细胞利用这些控制点,根据周围环境呈现独特的聚糖表达模式。一种名为Tollo/Toll-8的Toll样受体的活性,在果蝇胚胎中诱导出一种定义不完全但具有神经特异性的聚糖表达模式。要全面了解因Tollo/Toll-8信号改变而导致的聚糖表达变化,需要对野生型和突变型胚胎的完整N-连接聚糖谱进行表征。从野生型或突变型胚胎中收获的N-连接聚糖,通过分析型和制备型高压液相色谱、多维质谱以及外切糖苷酶消化进行直接结构分析,结果显示高甘露糖型和寡甘露糖型聚糖占主导。二、单和非岩藻糖基化形式的杂合型、复杂双天线型和三天线型聚糖占野生型聚糖谱总量的12%。检测到两种带有N-乙酰神经氨酸的唾液酸化聚糖,这是在果蝇中首次直接证明这种修饰。在正常发育过程中,聚糖谱会发生变化,这与α-甘露糖苷酶II和核心岩藻糖基转移酶活性增加以及融合叶处理己糖胺酶活性降低一致。在tollo/toll-8突变体中,双岩藻糖基化聚糖显著且预期的减少,伴随着单岩藻糖基化和非岩藻糖基化杂合聚糖意外减少,以及一些非岩藻糖基化寡甘露糖型和双天线型聚糖增加。因此,tollo/toll-8信号影响多个影响N-连接聚糖成熟的加工步骤中的通量。