Barlow Kyle A, Battles Michael B, Brown Michael E, Canfield Kaleigh, Lu Xiaojun, Lynaugh Heather, Morrill Morgan, Rappazzo C Garrett, Reyes Saira P, Sandberg Chanita, Sharkey Beth, Strong Christin, Zhao Jingfu, Sivasubramanian Arvind
Computational Biology, Adimab, Mountain View, CA, USA.
Antibody Engineering, Adimab, Lebanon, NH, USA.
MAbs. 2025 Dec;17(1):2479531. doi: 10.1080/19420862.2025.2479531. Epub 2025 Mar 24.
The correct pairing of cognate heavy and light chains is critical to the efficient manufacturing of IgG-like bispecific antibodies (bsAbs) from a single host cell. We present a general solution for the elimination of heavy chain (HC):light chain (LC) mispairs in bsAbs with LCs via the use of two orthogonal constant domain (C1:C) interfaces comprising computationally designed amino acid substitutions. Substitutions were designed by Rosetta to introduce novel hydrogen bond (H-bond) networks at the C1:C interface, followed by Rosetta energy calculations to identify designs with enhanced pairing specificity and interface stability. Our final design, featuring a total of 11 amino acid substitutions across two Fab constant regions, was tested on a set of six IgG-like bsAbs featuring a diverse set of unmodified human antibody variable domains. Purity assessments showed near-complete elimination of LC mispairs, including in cases with high baseline mispairing with wild-type constant domains. The engineered bsAbs broadly recapitulated the antigen-binding and biophysical developability properties of their monospecific counterparts and no adverse immunogenicity signal was identified by an in vitro assay. Fab crystal structures containing engineered constant domain interfaces revealed no major perturbations relative to the wild-type coordinates and validated the presence of the designed hydrogen bond interactions. Our work enables the facile assembly of independently discovered IgG-like bispecific antibodies in a single-cell host and demonstrates a streamlined and generalizable computational and experimental workflow for redesigning conserved protein:protein interfaces.
同源重链和轻链的正确配对对于从单个宿主细胞高效生产IgG样双特异性抗体(bsAbs)至关重要。我们提出了一种通用解决方案,通过使用两个包含经计算设计的氨基酸取代的正交恒定结构域(C1:C)界面,消除bsAbs中重链(HC)与轻链(LC)的错配。通过Rosetta设计取代,以在C1:C界面引入新的氢键(H键)网络,然后通过Rosetta能量计算来识别具有增强配对特异性和界面稳定性的设计。我们的最终设计在两个Fab恒定区共有11个氨基酸取代,在一组六个具有多种未修饰人抗体可变结构域的IgG样bsAbs上进行了测试。纯度评估显示几乎完全消除了LC错配,包括与野生型恒定结构域具有高基线错配的情况。工程化的bsAbs广泛概括了其单特异性对应物的抗原结合和生物物理可开发性特性,并且体外试验未发现不良免疫原性信号。包含工程化恒定结构域界面的Fab晶体结构显示相对于野生型坐标没有重大扰动,并验证了设计的氢键相互作用的存在。我们的工作使得能够在单细胞宿主中轻松组装独立发现的IgG样双特异性抗体,并展示了一种用于重新设计保守蛋白质-蛋白质界面的简化且可推广的计算和实验工作流程。