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通过化学筛选和计算建模研究抗体-药物偶联物中的分子间相互作用

Studying Intermolecular Interactions in an Antibody-Drug Conjugate Through Chemical Screening and Computational Modeling.

作者信息

Ebrahimi Sasha B, Hong Xuan, Ludlow James, Doucet Dany, Thirumangalathu Renuka

机构信息

Drug Product Development, Steriles, GlaxoSmithKline, Collegeville, PA 19426, United States.

Computational Sciences, GlaxoSmithKline, Collegeville, PA 19426, United States.

出版信息

J Pharm Sci. 2023 Oct;112(10):2621-2628. doi: 10.1016/j.xphs.2023.08.002. Epub 2023 Aug 11.

DOI:10.1016/j.xphs.2023.08.002
PMID:37572780
Abstract

Antibody-drug conjugates (ADCs) combine the selectivity of antibodies with the cytotoxicity of drug payloads to yield highly targeted and potent therapeutics. Owing to the need to chemically modify residues for attachment of the payload and their more complex structure compared to either component alone, ADCs can present additional challenges related to stability of the final drug product. Here, we report for the first time the use of high-throughput experimental screens and computational techniques to tune the conformational and colloidal behavior of a monomethyl auristatin F-based ADC. The ADC, which exhibits high opalescence with strongly attractive protein-protein interactions, is transformed into a more stable structure by experimentally traversing a library of more than ∼100 formulations. A significant reduction in turbidity and increase in diffusion interaction parameter is observed by varying properties such as pH and ionic strength. Computational modeling rationalized these changes and pointed to the presence of attractive electrostatic interactions between ADC molecules facilitated by the drug payload and histidine residues. Taken together, the experimental and computational work presented provides a general roadmap of studies to perform during ADC development to find stable formulations, while the mechanistic learnings can be applied towards the design and stabilization of other IgG1-based ADCs.

摘要

抗体药物偶联物(ADCs)将抗体的选择性与有效载荷的细胞毒性相结合,以产生高度靶向且强效的治疗药物。由于需要对残基进行化学修饰以连接有效载荷,并且与单独的任何一种组分相比其结构更为复杂,ADCs可能会给最终药物产品的稳定性带来额外挑战。在此,我们首次报告利用高通量实验筛选和计算技术来调节基于单甲基奥瑞他汀F的ADCs的构象和胶体行为。该ADCs因具有强烈的蛋白质-蛋白质吸引相互作用而呈现出高乳光现象,通过对超过100种配方的文库进行实验筛选,将其转化为更稳定的结构。通过改变诸如pH值和离子强度等性质,观察到浊度显著降低且扩散相互作用参数增加。计算建模对这些变化进行了合理化解释,并指出药物有效载荷和组氨酸残基促进了ADCs分子之间存在吸引性静电相互作用。综上所述,所开展的实验和计算工作为ADCs开发过程中寻找稳定配方提供了一般性的研究路线图,而其机理研究结果可应用于其他基于IgG1的ADCs的设计和稳定化。

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