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人 CMP-唾液酸转运蛋白对糖基工程昆虫细胞中重组糖蛋白唾液酸化的影响。

Impact of a human CMP-sialic acid transporter on recombinant glycoprotein sialylation in glycoengineered insect cells.

机构信息

Department of Molecular Biology, University of Wyoming, Laramie, WY 82071, USA.

出版信息

Glycobiology. 2013 Feb;23(2):199-210. doi: 10.1093/glycob/cws143. Epub 2012 Oct 12.

DOI:10.1093/glycob/cws143
PMID:23065352
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3531296/
Abstract

Insect cells are widely used for recombinant glycoprotein production, but they cannot provide the glycosylation patterns required for some biotechnological applications. This problem has been addressed by genetically engineering insect cells to express mammalian genes encoding various glycoprotein glycan processing functions. However, for various reasons, the impact of a mammalian cytosine-5'-monophospho (CMP)-sialic acid transporter has not yet been examined. Thus, we transformed Spodoptera frugiperda (Sf9) cells with six mammalian genes to generate a new cell line, SfSWT-4, that can produce sialylated glycoproteins when cultured with the sialic acid precursor, N-acetylmannosamine. We then super-transformed SfSWT-4 with a human CMP-sialic acid transporter (hCSAT) gene to isolate a daughter cell line, SfSWT-6, which expressed the hCSAT gene in addition to the other mammalian glycogenes. SfSWT-6 cells had higher levels of cell surface sialylation and also supported higher levels of recombinant glycoprotein sialylation, particularly when cultured with low concentrations of N-acetylmannosamine. Thus, hCSAT expression has an impact on glycoprotein sialylation, can reduce the cost of recombinant glycoprotein production and therefore should be included in ongoing efforts to glycoengineer the baculovirus-insect cell system. The results of this study also contributed new insights into the endogenous mechanism and potential mechanisms of CMP-sialic acid accumulation in the Golgi apparatus of lepidopteran insect cells.

摘要

昆虫细胞广泛用于重组糖蛋白生产,但它们不能提供某些生物技术应用所需的糖基化模式。这个问题通过遗传工程化昆虫细胞来表达编码各种糖蛋白糖基化加工功能的哺乳动物基因得到了解决。然而,由于各种原因,哺乳动物胞嘧啶 5'-单磷酸 (CMP)-唾液酸转运体的影响尚未被检测到。因此,我们将六种哺乳动物基因转染到 Spodoptera frugiperda( Sf9)细胞中,生成了一种新的细胞系 SfSWT-4,当用唾液酸前体 N-乙酰甘露糖胺培养时,该细胞系能够产生唾液酸化糖蛋白。然后,我们用人类 CMP-唾液酸转运体( hCSAT)基因再次超转化 SfSWT-4,分离出一个表达 hCSAT 基因的子细胞系 SfSWT-6,除了其他哺乳动物糖基因外, SfSWT-6 细胞还具有更高的细胞表面唾液酸化水平,并且还支持更高水平的重组糖蛋白唾液酸化,特别是在低浓度的 N-乙酰甘露糖胺培养时。因此, hCSAT 的表达对糖蛋白的唾液酸化有影响,可以降低重组糖蛋白生产的成本,因此应该包含在正在进行的糖基工程化杆状病毒-昆虫细胞系统的努力中。本研究的结果还为鳞翅目昆虫细胞高尔基体中 CMP-唾液酸积累的内源性机制和潜在机制提供了新的见解。

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