糖基化
化学
聚糖
单克隆抗体
抗体
糖蛋白
氢-氘交换
变构调节
单体
重组DNA
突变
蛋白质工程
N-连接糖基化
生物物理学
生物化学
质谱法
受体
生物
基因
遗传学
酶
聚合物
有机化学
色谱法
作者
Rebecca Rose,Patrick H.C. van Berkel,Ewald T.J. van den Bremer,Aran F. Labrijn,Tom Vink,Janine Schuurman,Albert J. R. Heck,Paul W.H.I. Parren
出处
期刊:mAbs
[Landes Bioscience]
日期:2013-03-01
卷期号:5 (2): 219-228
被引量:62
摘要
Antibody engineering is increasingly being used to influence the properties of monoclonal antibodies to improve their biotherapeutic potential. One important aspect of this is the modulation of glycosylation as a strategy to improve efficacy. Here, we describe mutations of Y407 in the CH3 domain of IgG1 and IgG4 that significantly increase sialylation, galactosylation, and branching of the N-linked glycans in the CH2 domain. These mutations also promote the formation of monomeric assemblies (one heavy-light chain pair). Hydrogen-deuterium exchange mass spectrometry was used to probe conformational changes in IgG1-Y407E, revealing, as expected, a more exposed CH3–CH3 dimerization interface. Additionally, allosteric structural effects in the CH2 domain and in the CH2–CH3 interface were identified, providing a possible explanation for the dramatic change in glycosylation. Thus, the mutation of Y407 in the CH3 domain remarkably affects both antibody conformation and glycosylation, which not only alters our understanding of antibody structure, but also reveals possibilities for obtaining recombinant IgG with glycosylation tailored for clinical applications.
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