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利用固态氘代氢交换质谱法(ssHDX-MS)优化片段抗原结合(Fab)蛋白的配方和冻干工艺。

Optimizing the Formulation and Lyophilization Process for a Fragment Antigen Binding (Fab) Protein Using Solid-State Hydrogen-Deuterium Exchange Mass Spectrometry (ssHDX-MS).

机构信息

Pharmaceutical Development, Genentech Inc. , San Francisco , California 94080 , United States.

Department of Industrial and Physical Pharmacy , Purdue University , West Lafayette , Indiana 47907 , United States.

出版信息

Mol Pharm. 2019 Nov 4;16(11):4485-4495. doi: 10.1021/acs.molpharmaceut.9b00614. Epub 2019 Oct 17.

Abstract

Solid-state hydrogen-deuterium exchange with mass spectrometry (ssHDX-MS) was evaluated as an analytical method to rapidly screen and select an optimal lyophilized fragment antigen binding protein (Fab) formulation and the optimal lyophilization cycle. ssHDX-MS in lyophilized Fab formulations, varying in stabilizer type and stabilizer/protein ratio, was conducted under controlled humidity and temperature. The extent of deuterium incorporation was measured using mass spectrometry and correlated with solid-state stress degradation at 50 °C as measured by size exclusion chromatography (SEC) and ion-exchange chromatography (IEC). ssHDX-MS was also used to evaluate the impact of three different types of lyophilization processing on storage stability: controlled ice nucleation (CN), uncontrolled ice nucleation (UCN), and annealing (AN). The extent of deuterium incorporation for different Fab formulations agreed with the order of solid-state stress degradation, with formulations having lower deuterium incorporation showing lower stress-induced degradation (aggregation and charge modifications). For lyophilization processing, no significant effect of ice nucleation was observed in either solid-state stress degradation or in the extent of deuterium incorporation for high concentration Fab formulations (25 mg/mL). In contrast, for low concentration Fab formulations (2.5 mg/mL), solid-state stability from different lyophilization processes correlated with the extent of deuterium incorporation. The order of solid-state degradation (AN < CN < UCN) was the same as the extent of deuterium incorporation on ssHDX-MS (AN < CN < UCN). The extent of deuterium incorporation on ssHDX-MS correlated well with the solid-state stress degradation for different Fab formulations and lyophilization processing methods. Thus, ssHDX-MS can be used to rapidly screen and optimize the formulation and lyophilization process for a lyophilized Fab, reducing the need for time-consuming stress degradation studies.

摘要

固态氘氢交换与质谱联用(ssHDX-MS)被评估为一种分析方法,用于快速筛选和选择最佳的冻干片段抗原结合蛋白(Fab)制剂和最佳的冻干循环。在受控湿度和温度下,对不同稳定剂类型和稳定剂/蛋白质比例的冻干 Fab 制剂进行 ssHDX-MS 研究。通过质谱测量氘的掺入程度,并与 50°C 下的固态应力降解相关联,固态应力降解通过尺寸排阻色谱(SEC)和离子交换色谱(IEC)进行测量。ssHDX-MS 还用于评估三种不同类型的冻干处理对储存稳定性的影响:控制冰核形成(CN)、非控制冰核形成(UCN)和退火(AN)。不同 Fab 制剂的氘掺入程度与固态应力降解的顺序一致,氘掺入程度较低的制剂显示出较低的固态应力诱导降解(聚集和电荷修饰)。对于高浓度 Fab 制剂(25mg/mL),冰核形成对固态应力降解或氘掺入程度没有显著影响。相比之下,对于低浓度 Fab 制剂(2.5mg/mL),不同冻干工艺的固态稳定性与氘掺入程度相关。固态降解的顺序(AN<CN<UCN)与 ssHDX-MS 上的氘掺入程度相同(AN<CN<UCN)。ssHDX-MS 上的氘掺入程度与不同 Fab 制剂和冻干处理方法的固态应力降解高度相关。因此,ssHDX-MS 可用于快速筛选和优化冻干 Fab 的配方和冻干工艺,减少对耗时的应力降解研究的需求。

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