钝化
空化
吸附
聚乙二醇
材料科学
蛋白质吸附
PEG比率
化学工程
休克(循环)
蛋白质聚集
下降(电信)
化学
纳米技术
有机化学
热力学
机械工程
生物化学
医学
物理
财务
图层(电子)
内科学
工程类
经济
作者
Sanli Movafaghi,Hao Wu,Irene M. Francino Urdániz,David S. Bull,Mary D. Kelly,Theodore W. Randolph,Andrew P. Goodwin
标识
DOI:10.1002/biot.202000096
摘要
Aggregation of therapeutic proteins can result from a number of stress conditions encountered during their manufacture, transportation, and storage. This work shows the effects of two interrelated sources of protein aggregation: the chemistry and structure of the surface of the container in which the protein is stored, and mechanical shocks that may result from handling of the formulation. How different mechanical stress conditions (dropping, tumbling, and agitation) and container surface passivation affect the stability of solutions of intravenous immunoglobulin are investigated. Application of mechanical shock causes cavitation to occur in the protein solution, followed by bubble collapse and the formation of high-velocity fluid microjets that impinged on container surfaces, leading to particle formation. Cavitation was observed after dropping of vials from heights as low as 5 cm, but polyethylene glycol (PEG) grafting provided temporary protection against drop-induced cavitation. PEG treatment of the vial surface reduced the formation of protein aggregates after repeated dropping events, most likely by reducing protein adsorption to container surfaces. These studies enable the development of new coatings and surface chemistries that can reduce the particulate formation induced by surface adsorption and/or mechanical shock.
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