Department of Drug Design and Pharmacology, University of Copenhagen, Universitetsparken 2, Copenhagen 2100, Denmark.
Biopharmaceuticals Research Unit, Novo Nordisk A/S, Novo Nordisk Park 1, 2760 Måløv, Denmark.
IUCrJ. 2015 Jan 1;2(Pt 1):9-18. doi: 10.1107/S205225251402209X.
IgG subclass-specific differences in biological function and in vitro stability are often referred to variations in the conformational flexibility, while this flexibility has rarely been characterized. Here, small-angle X-ray scattering data from IgG1, IgG2 and IgG4 antibodies, which were designed with identical variable regions, were thoroughly analysed by the ensemble optimization method. The extended analysis of the optimized ensembles through shape clustering reveals distinct subclass-specific conformational preferences, which provide new insights for understanding the variations in physical/chemical stability and biological function of therapeutic antibodies. Importantly, the way that specific differences in the linker region correlate with the solution structure of intact antibodies is revealed, thereby visualizing future potential for the rational design of antibodies with designated physicochemical properties and tailored effector functions. In addition, this advanced computational approach is applicable to other flexible multi-domain systems and extends the potential for investigating flexibility in solutions of macromolecules by small-angle X-ray scattering.
IgG 亚类在生物学功能和体外稳定性方面的特异性差异通常归因于构象灵活性的变化,而这种灵活性很少被描述。在这里,通过集合优化方法对具有相同可变区的 IgG1、IgG2 和 IgG4 抗体的小角度 X 射线散射数据进行了彻底分析。通过形状聚类对优化集合的扩展分析揭示了不同亚类特异性的构象偏好,为理解治疗性抗体的物理/化学稳定性和生物学功能的变化提供了新的见解。重要的是,揭示了连接子区域的特定差异与完整抗体的溶液结构之间的关系,从而为设计具有指定物理化学性质和定制效应功能的抗体提供了新的思路。此外,这种先进的计算方法适用于其他灵活的多结构域系统,并通过小角度 X 射线散射扩展了研究大分子溶液中灵活性的潜力。