Computationally inspired glycoengineering to maximise mAb β4-galactosylation

单克隆抗体 中国仓鼠卵巢细胞 免疫原性 细胞培养 细胞生物学 计算生物学 生物 细胞 抗体 异源的 HEK 293细胞 化学 重组DNA 代谢工程 伴侣(临床) 糖基化 人性化鼠标 基因剔除小鼠 表型 基因缺失 关键质量属性 蛋白质工程 细胞生长 体外
作者
Itzcóatl Gómez Aquino,Mina Ghahremanzamaneh,Apostolos Tsopanoglou,Alfonso Blanco,Sara Carillo,Jonathan Bones,Ioscani Jiménez del Val
出处
期刊:Metabolic Engineering [Elsevier BV]
卷期号:99: 102549-102549
标识
DOI:10.1016/j.ymben.2026.102549
摘要

β4-galactosylation is a critical quality attribute of therapeutic monoclonal antibodies (mAbs), enhancing complement-dependent cytotoxicity, antibody-dependent cytotoxicity, and antibody-dependent cellular phagocytosis. Despite its therapeutic importance, galactosylation remains the most variable glycosylation motif due to its sensitivity to cell culture conditions. Here, we describe a dual genetic engineering strategy applied to two mAb-producing CHO cell lines, DP12 and VRC01, to simultaneously overcome the cellular machinery and metabolic bottlenecks that limit β4-galactosylation. The first engineering event knocks out COSMC, the chaperone required for core 1 β-1,3-galactosyltransferase 1 activity, to redirect UDP-Gal consumption from O-linked β3-galactosylation towards mAb Fc N-linked β4-galactosylation. The second event overexpresses β-1,4-galactosyltransferase 1 (β4GalT1) to augment cellular galactosylation machinery. Each modification was characterised individually (COSMC- and GalT+) and in combination (C-/GT+) across both cell lines in batch and fed-batch cultures. The combined C-/GT+ strategy consistently achieved greater than 90% mAb Fc β4-galactosylation, irrespective of host cell line or culture mode. Metabolic characterisation confirmed that both engineering events alleviate their respective bottlenecks: COSMC knockout redirects UDP-Gal flux and β4GalT1 overexpression increases N-galactosylation capacity. The C-/GT+ strategy also reduced production of Man5 glycans, which accelerate serum clearance and pose immunogenicity risks. Metabolic profiling suggests that the COSMC knockout may attenuate UTP consumption and contributes to reduced Man5 production. C-/GT+ glycoengineering had no negative impact on mAb titre. Our results establish the C-/GT+ dual glycoengineering strategy as a robust approach for consistently achieving high mAb galactosylation across diverse cell culture conditions, with the additional benefit of reduced Man5 glycans.
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