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人源 IgG1 和 IgG4 S228P 单克隆抗体的黏度和自身相互作用的差异:结构域相互作用的实验评估和计算预测。

Differences in human IgG1 and IgG4 S228P monoclonal antibodies viscosity and self-interactions: Experimental assessment and computational predictions of domain interactions.

机构信息

Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts USA.

Current Address: Department of Chemical Engineering and Materials Science, Stevens Institute of Technology, Hoboken, New Jersey USA.

出版信息

MAbs. 2021 Jan-Dec;13(1):1991256. doi: 10.1080/19420862.2021.1991256.

Abstract

Human/humanized IgG4 antibodies have reduced effector function relative to IgG1 antibodies, which is desirable for certain therapeutic purposes. However, the developability and biophysical properties for IgG4 antibodies are not well understood. This work focuses on the head-to-head comparison of key biophysical properties, such as self-interaction and viscosity, for 14 human/humanized, and chimeric IgG1 and IgG4 S228P monoclonal antibody pairs that contain the identical variable regions. Experimental measurements showed that the IgG4 S228P antibodies have similar or higher self-interaction and viscosity than that of IgG1 antibodies in 20 mM sodium acetate, pH 5.5. We report sequence and structural drivers for the increased viscosity and self-interaction detected in IgG4 S228P antibodies through a combination of experimental data and computational models. Further, we applied and extended a previously established computational model for IgG1 antibodies to predict the self-interaction and viscosity behavior for each antibody pair, providing insight into the structural characteristics and differences of these two isotypes. Interestingly, we observed that the IgG4 S228P swapped variants, where the CH3 domain was swapped for that of an IgG1, showed reduced self-interaction behavior. These domain swapped IgG4 S228P molecules also showed reduced viscosity from experiment and coarse-grained simulations. We also observed that experimental diffusion interaction parameter (kD) values have a high correlation with computational diffusivity prediction for both IgG1 and IgG4 S228P isotypes.Abbreviations: , constant region Hamaker constant; , variable region Hamaker constant; CDRs, Complementarity-determining regions; CG, Coarse-grained model; CH1, Constant heavy chain 1; CH2 Constant heavy chain 2; CH3 Constant heavy chain 3; chgCH3 Effective charge on the CH3 region; CL Constant light chain; cP, Centipoise; DLS, Dynamic light scattering; Fab, Fragment antigen-binding; Fc, Fragment crystallizable; Fv, Variable domaing; (r) Radial distribution function; H1 CDR1 of Heavy Chain; H2 CDR2 of Heavy Chain; H3 CDR3 of Heavy Chain; HVI, High viscosity index; IgG1 human immunoglobulin of IgG1 subclass; IgG4 human immunoglobulin of IgG4 subclass; kD, Diffusion interaction parameter; L1 CDR1 of Light Chain; L2 CDR2 of Light Chain; L3 CDR3 of Light Chain; mAb, Monoclonal antibody; MD, Molecular dynamics; PPI Protein-protein interactions; SCM, Spatial charge map; UP-SEC, Ultra-high-performance size-exclusion chromatography; VH, Variable domain of Heavy Chain; VL, Variable domain of Light Chain.

摘要

人源化 IgG4 抗体相对于 IgG1 抗体具有降低的效应功能,这对于某些治疗目的是理想的。然而,对于 IgG4 抗体的可开发性和生物物理性质还了解甚少。这项工作重点比较了 14 个人源化 IgG4 和嵌合 IgG1 和 IgG4 S228P 单克隆抗体对的关键生物物理性质,如自相互作用和粘度,这些抗体对包含相同的可变区。实验测量表明,在 20mM 乙酸钠,pH5.5 中,IgG4 S228P 抗体的自相互作用和粘度与 IgG1 抗体相似或更高。我们通过实验数据和计算模型的组合报告了在 IgG4 S228P 抗体中检测到的增加的粘度和自相互作用的序列和结构驱动因素。此外,我们应用并扩展了以前建立的 IgG1 抗体的计算模型来预测每个抗体对的自相互作用和粘度行为,为这两种同种型的结构特征和差异提供了深入的了解。有趣的是,我们观察到 CH3 结构域被 IgG1 的 CH3 结构域取代的 IgG4 S228P 交换变体表现出降低的自相互作用行为。这些结构域交换的 IgG4 S228P 分子也显示出实验和粗粒化模拟中降低的粘度。我们还观察到实验扩散相互作用参数 (kD) 值与 IgG1 和 IgG4 S228P 同种型的计算扩散率预测具有高度相关性。缩写:, 恒定区哈马克常数;, 可变区哈马克常数; CDR, 互补决定区; CG, 粗粒模型; CH1, 恒定重链 1; CH2, 恒定重链 2; CH3, 恒定重链 3; chgCH3, CH3 区域的有效电荷; CL, 恒定轻链; cP, 厘泊; DLS, 动态光散射; Fab, 抗原结合片段; Fc, 结晶片段; Fv, 可变结构域; (r) 径向分布函数; H1 CDR1 重链; H2 CDR2 重链; H3 CDR3 重链; HVI, 高粘度指数; IgG1 人免疫球蛋白 IgG1 亚类; IgG4 人免疫球蛋白 IgG4 亚类; kD, 扩散相互作用参数; L1 CDR1 轻链; L2 CDR2 轻链; L3 CDR3 轻链; mAb, 单克隆抗体; MD, 分子动力学; PPI, 蛋白质-蛋白质相互作用; SCM, 空间电荷图; UP-SEC, 超高性能尺寸排阻色谱; VH, 重链可变结构域; VL, 轻链可变结构域。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4bf5/8583000/f367cd575b1e/KMAB_A_1991256_F0001_OC.jpg

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