化学
互补决定区
动态光散射
抗体
粘度
单域抗体
分子动力学
胰高血糖素受体
生物物理学
色谱法
生物化学
热力学
肽序列
材料科学
纳米技术
计算化学
激素
生物
遗传学
胰高血糖素
物理
基因
纳米颗粒
作者
Jing Dai,Saeed Izadi,Jonathan Zarzar,Patrick Wu,Angela Oh,Paul J. Carter
出处
期刊:mAbs
[Landes Bioscience]
日期:2024-01-25
卷期号:16 (1): 2304282-2304282
被引量:24
标识
DOI:10.1080/19420862.2024.2304282
摘要
Subcutaneous injection is the preferred route of administration for many antibody therapeutics for reasons that include its speed and convenience. However, the small volume limit (typically ≤2 mL) for subcutaneous delivery often necessitates antibody formulations at high concentrations (commonly ≥100 mg/mL), which may lead to physicochemical problems. For example, antibodies with large hydrophobic or charged patches can be prone to self-interaction giving rise to high viscosity. Here, we combined X-ray crystallography with computational modeling to predict regions of an anti-glucagon receptor (GCGR) IgG1 antibody prone to self-interaction. An extensive mutational analysis was undertaken of the complementarity-determining region residues residing in hydrophobic surface patches predicted by spatial aggregation propensity, in conjunction with residue-level solvent accessibility, averaged over conformational ensembles from molecular dynamics simulations. Dynamic light scattering (DLS) was used as a medium throughput screen for self-interaction of ~ 200 anti-GCGR IgG1 variants. A negative correlation was found between the viscosity determined at high concentration (180 mg/mL) and the DLS interaction parameter measured at low concentration (2–10 mg/mL). Additionally, anti-GCGR variants were readily identified with reduced viscosity and antigen-binding affinity within a few fold of the parent antibody, with no identified impact on overall developability. The methods described here may be useful in the optimization of other antibodies to facilitate their therapeutic administration at high concentration.
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