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影响高剪切环境下固液界面抗体稳定性的因素。

Factors influencing antibody stability at solid-liquid interfaces in a high shear environment.

机构信息

The Advanced Centre for Biochemical Engineering, University College London, UK.

出版信息

Biotechnol Prog. 2009 Sep-Oct;25(5):1499-507. doi: 10.1002/btpr.211.

Abstract

A rotating disk shear device was used to study the effect of interfacial shear on the structural integrity of human monoclonal antibodies of IgG4 isotype. Factors associated with the solution conditions (pH, ionic strength, surfactant concentration, temperature) and the interface (surface roughness) were studied for their effect on the rate of IgG4 monomer loss under high shear conditions. The structural integrity of the IgG4 was probed after exposure to interfacial shear effects by SDS-PAGE, IEF, dynamic light scattering, and peptide mapping by LC-MS. This analysis revealed that the main denaturation pathway of IgG4 exposed to these effects was the formation of large insoluble aggregates. Soluble aggregation, breakdown in primary structure, and chemical modifications were not detected. The dominant factors found to affect the rate of IgG4 monomer loss under interfacial shear conditions were found to be pH and the nanometer-scale surface roughness associated with the solid-liquid interface. Interestingly, temperature was not found to be a significant factor in the range tested (15-45 degrees C). The addition of surfactant was found to have a significant stabilizing effect at concentrations up to 0.02% (w/v). Implications of these findings for the bioprocessing of this class of therapeutic protein are briefly discussed.

摘要

采用旋转圆盘剪切装置研究了界面剪切对 IgG4 同型人单克隆抗体结构完整性的影响。研究了与溶液条件(pH 值、离子强度、表面活性剂浓度、温度)和界面(表面粗糙度)相关的因素,以了解它们对高剪切条件下 IgG4 单体损失速率的影响。通过 SDS-PAGE、IEF、动态光散射和 LC-MS 的肽图分析,在暴露于界面剪切效应后探测 IgG4 的结构完整性。该分析表明,暴露于这些效应的 IgG4 的主要变性途径是形成大的不溶性聚集体。未检测到可溶性聚集、一级结构破坏和化学修饰。发现影响界面剪切条件下 IgG4 单体损失速率的主要因素是 pH 值和与固液界面相关的纳米级表面粗糙度。有趣的是,在所测试的温度范围内(15-45°C),温度未被发现是一个重要因素。发现表面活性剂的添加在高达 0.02%(w/v)的浓度下具有显著的稳定作用。简要讨论了这些发现对该类治疗性蛋白生物加工的意义。

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