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Co-expression of two mammalian glycosyltransferases in the yeast cell wall allows synthesis of sLex

机译:酵母细胞壁中两种哺乳动物糖基转移酶的共表达可合成sLex

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摘要

Interactions between selectins and their oligosaccharide-decorated counter-receptors play an important role in the initiation of leukocyte extravasation in inflammation. l-selectin ligands are O-glycosylated with sulphated sialyl Lewis X epitopes (sulpho-sLex). Synthetic sLex oligosaccharides have been shown to inhibit adhesion of lymphocytes to endothelium at sites of inflammation. Thus, they could be used to prevent undesirable inflammatory reactions such as rejection of organ transplants. In vitro synthesis of sLex glycans is dependent on the availability of recombinant glycosyltransferases. Here we expressed the catalytic domain of human alpha-1,3-fucosyltransferase VII in the yeasts Saccharomyces cerevisiae and Pichia pastoris. To promote proper folding and secretion competence of this catalytic domain in yeast, it was fused to the Hsp150Delta carrier, which is an N-terminal fragment of a secretory glycoprotein of S. cerevisiae. In both yeasts, the catalytic domain acquired an active conformation and the fusion protein was externalised, but remained mostly attached to the cell wall in a non-covalent fashion. Incubation of intact S. cerevisiae or P. pastoris cells with GDP-[(14)C]fucose and sialyl-alpha-2,3-N-acetyllactosamine resulted in synthesis of radioactive sLex, which diffused to the medium. Finally, we constructed an S. cerevisiae strain co-expressing the catalytic domains of alpha-2,3-sialyltransferase and alpha-1,3-fucosyltransferase VII, which were targeted to the cell wall. When these cells were provided with N-acetyllactosamine, CMP-sialic acid and GDP-[(14)C]fucose, radioactive sLex was produced to the medium. These data imply that yeast cells can provide a self-perpetuating source of fucosyltransferase activity immobilized in the cell wall, useful for the in vitro synthesis of sLex.
机译:选择素与其寡糖修饰的反受体之间的相互作用在炎症中白细胞外渗的开始中起重要作用。 I-选择蛋白配体被硫酸化的唾液酸的路易斯X表位(sulpho-sLex)O-糖基化。合成的sLex寡糖已显示出可抑制淋巴细胞在炎症部位与内皮的粘附。因此,它们可用于预防不良的炎症反应,例如器官移植排斥。 sLex聚糖的体外合成取决于重组糖基转移酶的可用性。在这里,我们在酿酒酵母和巴斯德毕赤酵母中表达了人α-1,3-岩藻糖基转移酶VII的催化结构域。为了促进该催化结构域在酵母中的适当折叠和分泌能力,将其融合到Hsp150Delta载体上,该载体是酿酒酵母分泌糖蛋白的N端片段。在两种酵母中,催化结构域均获得了活性构象,融合蛋白外在化,但仍以非共价方式大部分附着在细胞壁上。将完整的酿酒酵母或巴斯德毕赤酵母细胞与GDP-[(14)C]岩藻糖和唾液酸-α-2,3-N-乙酰基乳糖胺一起孵育可产生放射性sLex,并扩散到培养基中。最后,我们构建了共表达α-2,3-唾液酸转移酶和α-1,3-岩藻糖基转移酶VII的催化域的酿酒酵母菌株,它们靶向细胞壁。当向这些细胞提供N-乙酰基乳糖胺,CMP-唾液酸和GDP-[(14)C]岩藻糖时,向培养基中产生了放射性sLex。这些数据暗示酵母细胞可以提供固定在细胞壁上的岩藻糖基转移酶活性的自我延续来源,可用于sLex的体外合成。

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