聚糖
结合
糖基化
碎片结晶区
双特异性抗体
连接器
抗体
化学
生物结合
岩藻糖基转移酶
树枝状大分子
糖生物学
单克隆抗体
生物化学
组合化学
酶
生物
糖蛋白
免疫学
受体
计算机科学
操作系统
数学分析
数学
作者
Yang Yang,Zhiqing Song,Tian Tian,Zihan Zhao,Ji Chen,Jiangping Hu,Xin Jiang,Guoli Yang,Qi Xue,Xinlu Zhao,Wanxing Sha,Yi Yang,Jie Li
标识
DOI:10.1101/2022.09.04.506510
摘要
Glycoengineering has been demonstrated to be a powerful tool to construct site-specific antibody conjugates. However, with most glycoengineering strategies, several hours to days are needed to complete the reaction, and the payloads are limited to small molecules. Herein, we show that reducing the complexity of Fc glycan could dramatically boost the enzymatic glycoengineering of IgG molecules to achieve unexpectedly high efficiency and payload capacity. Notably, antibodies with the modified Fc glycan were successfully conjugated with biomacromolecules, e.g ., oligonucleotides and nanobodies, in one step by an engineered fucosyltransferase. Moreover, the conversion of this chemoenzymatic engineering could be finished in minutes, or up to hours, affording homogeneous products. The trisaccharide linker of these antibody conjugates exhibits excellent hydrophilicity and stability and reduced ADCC activity. Using this platform, we successfully synthesized an antibody-conjugate-based HER2/CD3 bispecific antibody and applied it to selectively destroy patient-derived cancer organoids by reactivating endogenous T cells inside the organoid. These results suggest that this bispecific antibody format has a high translational value.
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