Rapid Mass Spectrometry-Based Multiattribute Method for Glycation Analysis with Integrated Afucosylation Detection Capability

化学 质谱法 糖基化 糖基化 色谱法 化学计量学 生物标志物发现 蛋白质组学 生物化学 基因 受体
作者
Mengjiao Xu,Tao Liu,Jin Xu,Qingcheng Guo,Yule Ren,Weifan Zhu,Huangzhen Zhuang,Zhiyuan Pan,Rongrong Fu,Xiang Zhao,Fugui Wang,Yanni Mao,Lankun Song,Yang Song,Lusha Ji,Weizhu Qian,Sheng Hou,Rui Wang,Jun Li,Dapeng Zhang
出处
期刊:Journal of the American Society for Mass Spectrometry [American Chemical Society]
卷期号:35 (8): 1669-1679 被引量:3
标识
DOI:10.1021/jasms.4c00063
摘要

The multiattribute method (MAM) has emerged as a powerful tool for simultaneously screening multiple product quality attributes of therapeutic antibodies. One such potential critical quality attribute (CQA) is glycation, a common modification that can impact the heterogeneity, functional activity, and immunogenicity of therapeutic antibodies. However, current methods for monitoring glycation levels in MAM are rare and not sufficiently rapid and accurate. In this study, an improved mass spectrometry (MS)-based MAM was developed to simultaneously monitor glycation and other quality attributes including afucosylation. The method was evaluated using two therapeutic antibodies with different glycosylation site numbers. Treatment with IdeS, Endo F2, and dithiothreitol generated three distinct subunits, and the glycation results obtained were similar to those treated with PNGase F, which is routinely used to release glycans; the sample processing time was greatly reduced while providing additional quality attribute information. The MS-based MAM was also employed to assess the glycation progression following forced glycation in various buffer solutions. A significant increase in oxidation was observed when forced glycation was conducted in an ammonium bicarbonate buffer solution, and a total of 23 potential glycation sites and 4 significantly oxidized sites were identified. Notably, we found that ammonium bicarbonate was found to specifically stimulate oxidation, while glycation had a synergistic effect on oxidation. These findings establish this study as a novel methodology for achieving a technologically advanced platform and concept that enhances the efficacy of product development and quality control, characterized by its broad-spectrum, rapid, and accurate nature.
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