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用编码哺乳动物β1,4-半乳糖基转移酶的立即早期重组杆状病毒感染鳞翅目昆虫细胞所产生的糖蛋白聚糖的电泳分析。

Electrophoretic analysis of glycoprotein glycans produced by lepidopteran insect cells infected with an immediate early recombinant baculovirus encoding mammalian beta1,4-galactosyltransferase.

作者信息

Wolff M W, Murhammer D W, Jarvis D L, Linhardt R J

机构信息

Department of Chemical and Biochemical Engineering, University of Wyoming, Laramie 82071, USA.

出版信息

Glycoconj J. 1999 Dec;16(12):753-6. doi: 10.1023/a:1007131611378.

Abstract

Glycosylation, the most extensive co- and post-translational modification of eukaryotic cells, can significantly affect biological activity and is particularly important for recombinant glycoproteins in human therapeutic applications. The baculovirus-insect cell expression system is a popular tool for the expression of heterologous proteins and has an excellent record of producing high levels of biologically active eukaryotic proteins. Insect cells are capable of glycosylation, but their N-glycosylation pathway is truncated in comparison with the pathway of mammalian cells. A previous study demonstrated that an immediate early recombinant baculovirus could be used to extend the insect cell N-glycosylation pathway by contributing bovine beta-1,4 galactosyltransferase (GalT) immediately after infection. Lectin blotting assays indicated that this ectopically expressed enzyme could transfer galactose to an N-linked glycan on a foreign glycoprotein expressed later in infection. In the current study, glycans were isolated from total Sf-9 cell glycoproteins after infection with the immediate early recombinant baculovirus encoding GalT, fluorescently conjugated and analyzed by electrophoresis in combination with exoglycosidase digestion. These direct analyses clearly demonstrated that Sf-9 cells infected with this recombinant baculovirus can synthesize galactosylated N-linked glycans.

摘要

糖基化是真核细胞中最广泛的共翻译和翻译后修饰,可显著影响生物活性,对人类治疗应用中的重组糖蛋白尤为重要。杆状病毒-昆虫细胞表达系统是一种常用的异源蛋白表达工具,在产生高水平生物活性真核蛋白方面有着出色的记录。昆虫细胞能够进行糖基化,但与哺乳动物细胞的途径相比,其N-糖基化途径有所截短。先前的一项研究表明,一种立即早期重组杆状病毒可用于在感染后立即引入牛β-1,4-半乳糖基转移酶(GalT)来扩展昆虫细胞的N-糖基化途径。凝集素印迹分析表明,这种异位表达的酶可将半乳糖转移至感染后期表达的外源糖蛋白上的N-连接聚糖。在本研究中,在用编码GalT的立即早期重组杆状病毒感染后,从总的Sf-9细胞糖蛋白中分离聚糖,进行荧光共轭,并结合外切糖苷酶消化通过电泳进行分析。这些直接分析清楚地表明,用这种重组杆状病毒感染的Sf-9细胞能够合成半乳糖基化的N-连接聚糖。

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