Yang Yi, Zhang Fan, Gan Yutian, Zhang Hui-Min, Liu Peilu, Mah Anna, Gennaro Lynn, Schöneich Christian
Protein Analytical Chemistry, Genentech Inc, South San Francisco, California 94080, United States.
Department of Pharmaceutical Chemistry, University of Kansas, Lawrence, Kansas 66047, United States.
Anal Chem. 2023 Apr 11;95(14):5867-5876. doi: 10.1021/acs.analchem.2c04414. Epub 2023 Mar 27.
Characterization of antibody charge heterogeneity is an important task for antibody drug development. Recently, a correlation between acidic charge heterogeneity and metal-catalyzed oxidation has been observed for antibody drugs. However, to date, the acidic variants induced by metal-catalyzed oxidation have not been elucidated. In addition, it is challenging to satisfactorily explain the induced acidic charge heterogeneity, as the existing analytical workflows, which relied on either untargeted or targeted peptide mapping analysis, could lead to incomplete identification of the acidic variants. In this work, we present a new characterization workflow by combining untargeted and targeted analyses to thoroughly identify and characterize the induced acidic variants in a highly oxidized IgG1 antibody. As a part of this workflow, a tryptic peptide mapping method was also developed for accurate determination of the relative extent of site-specific carbonylation, where a new hydrazone reduction procedure was established to minimize under-quantitation artifacts caused by incomplete reduction of hydrazones during sample preparation. In summary, we identified 28 site-specific oxidation products, which are located on 26 residues and of 11 different modification types, as the sources of the induced acidic charge heterogeneity. Many of the oxidation products were reported for the first time in antibody drugs. More importantly, this study provides new insights to understanding acidic charge heterogeneity of antibody drugs in the biotechnology industry. Additionally, the characterization workflow presented in this study can be applied as a platform approach in the biotechnology industry to better address the need for in-depth characterization of antibody charge variants.
抗体电荷异质性的表征是抗体药物开发中的一项重要任务。最近,在抗体药物中观察到酸性电荷异质性与金属催化氧化之间存在相关性。然而,迄今为止,金属催化氧化诱导的酸性变体尚未得到阐明。此外,要令人满意地解释诱导的酸性电荷异质性具有挑战性,因为现有的分析工作流程,无论是基于非靶向还是靶向肽图分析,都可能导致酸性变体的不完全鉴定。在这项工作中,我们提出了一种新的表征工作流程,通过结合非靶向和靶向分析,以全面鉴定和表征高度氧化的IgG1抗体中诱导的酸性变体。作为该工作流程的一部分,还开发了一种胰蛋白酶肽图方法,用于准确测定位点特异性羰基化的相对程度,其中建立了一种新的腙还原程序,以尽量减少样品制备过程中由于腙还原不完全而导致的定量不足假象。总之,我们鉴定出28种位点特异性氧化产物,它们位于26个残基上,属于11种不同的修饰类型,是诱导酸性电荷异质性的来源。许多氧化产物在抗体药物中首次被报道。更重要的是,本研究为理解生物技术行业中抗体药物的酸性电荷异质性提供了新见解。此外,本研究中提出的表征工作流程可作为生物技术行业的一种平台方法,以更好地满足对抗体电荷变体进行深入表征的需求。