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基于苔藓生产的去岩藻糖基促红细胞生成素,不含 Lewis A 及其他植物典型碳水化合物决定簇。

Moss-based production of asialo-erythropoietin devoid of Lewis A and other plant-typical carbohydrate determinants.

机构信息

Plant Biotechnology, University of Freiburg, Freiburg, Germany.

出版信息

Plant Biotechnol J. 2012 Sep;10(7):851-61. doi: 10.1111/j.1467-7652.2012.00704.x. Epub 2012 May 24.

Abstract

Protein therapeutics represent one of the most increasing areas in the pharmaceutical industry. Plants gain acceptance as attractive alternatives for high-quality and economical protein production. However, as the majority of biopharmaceuticals are glycoproteins, plant-specific N-glycosylation has to be taken into consideration. In Physcomitrella patens (moss), glyco-engineering is an applicable tool, and the removal of immunogenic core xylose and fucose residues was realized before. Here, we present the identification of the enzymes that are responsible for terminal glycosylation (α1,4 fucosylation and β1,3 galactosylation) on complex-type N-glycans in moss. The terminal trisaccharide consisting of α1,4 fucose and β1,3 galactose linked to N-acetylglucosamine forms the so-called Lewis A epitope. This epitope is rare on moss wild-type proteins, but was shown to be enriched on complex-type N-glycans of moss-produced recombinant human erythropoietin, while unknown from the native human protein. Via gene targeting of moss galactosyltransferase and fucosyltransferase genes, we identified the gene responsible for terminal glycosylation and were able to completely abolish the formation of Lewis A residues on the recombinant biopharmaceutical.

摘要

蛋白质疗法是制药行业增长最快的领域之一。植物作为高质量和经济的蛋白质生产的有吸引力的替代品而被广泛接受。然而,由于大多数生物制药是糖蛋白,因此必须考虑植物特有的 N-糖基化。在Physcomitrella patens(苔藓)中,糖基工程是一种可行的工具,并且已经实现了去除免疫原性核心木糖和岩藻糖残基。在这里,我们鉴定了负责在苔藓中复杂型 N-聚糖上进行末端糖基化(α1,4 岩藻糖基化和β1,3 半乳糖基化)的酶。由α1,4 岩藻糖和β1,3 半乳糖连接到 N-乙酰葡萄糖胺的末端三糖形成所谓的 Lewis A 表位。该表位在苔藓野生型蛋白中很少见,但在苔藓产生的重组人红细胞生成素的复杂型 N-聚糖中显示出富集,而在天然人蛋白中则不存在。通过对苔藓半乳糖基转移酶和岩藻糖基转移酶基因的基因靶向,我们鉴定了负责末端糖基化的基因,并能够完全消除重组生物制药中 Lewis A 残基的形成。

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