化学
抗体
生物化学
生物物理学
分子动力学
细胞
计算生物学
细胞生物学
血浆蛋白结合
T细胞
CD3型
结合位点
蛋白质工程
HEK 293细胞
双特异性抗体
分子生物学
细胞培养
蛋白质结构
抗体反应
单克隆抗体
突变
作者
Grégory La Sala,Katharina B. Kroell,Mudita Pincha,Christian Gassner,Lorenzo Dehò,Ekkehard Moessner,Xavier Guéripel,Nicole Borin,Moritz Classen,Jörg Benz,Alexander Bujotzek,Christian Klein,Guy Georges,Adrian Hugenmatter,Klaus R. Liedl,Anna Vangone
出处
期刊:mAbs
[Landes Bioscience]
日期:2026-04-27
卷期号:18 (1): 2658902-2658902
标识
DOI:10.1080/19420862.2026.2658902
摘要
The development of anti-CD3 antibody-based T cell engager therapeutics has improved the treatment of various malignancies, yet the challenge of achieving tumor-specific targeting while minimizing on-target off-tumor effects in normal tissues remains a substantial hurdle. One promising strategy to address this issue involves engineering antibodies with conditional pH-dependent binding affinities, capitalizing on the acidic microenvironment characteristics of tumors (pH ~ 6.5-6.8) compared to the neutral pH of healthy tissues (pH ~ 7.4). In this study, we focus on the pH-engineering of antibody binders against the human CD3 antigen, a critical component of T cell activation, to achieve preferential binding at acidic pH. Using molecular dynamics (MD) simulations on the reported CD3ɛ antibody binder 40G5c, we shed light on possible molecular mechanisms of the pH-responsiveness of key mutations and their impact on the overall binder structure at physiological or acidic pH. Our study highlights how MD has emerged as a powerful tool to guide and explain intrinsic pH-dependent molecular mechanisms in antibody engineering. Lastly, we report that our engineered CD3 binders preferentially bind and activate T cells under acidic pH conditions and display favorable affinity and pH-window profiles.
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