流变学
流变仪
粒子(生态学)
粘弹性
粘度
拉普拉斯压力
材料科学
化学
表面张力
化学工程
复合材料
热力学
物理
地质学
工程类
海洋学
作者
Gigi Lin,Jai A. Pathak,Dong‐Hyun Kim,Carlson Marcia,Valeria Riguero,Yoen Joo Kim,Jean S. Buff,Gerald G. Fuller
出处
期刊:Soft Matter
[Royal Society of Chemistry]
日期:2016-01-01
卷期号:12 (14): 3293-3302
被引量:70
摘要
Protein molecules are amphiphilic moieties that spontaneously adsorb at the air/solution (A/S) interface to lower the surface energy. Previous studies have shown that hydrodynamic disruptions to these A/S interfaces can result in the formation of protein aggregates that are of concern to the pharmaceutical industry. Interfacial hydrodynamic stresses encountered by protein therapeutic solutions under typical manufacturing, filling, and shipping conditions will impact protein stability, prompting a need to characterize the contribution of basic fluid kinematics to monoclonal antibody (mAb) destabilization. We demonstrate that dilatational surface deformations are more important to antibody stability when compared to constant-area shear of the A/S interface. We have constructed a dilatational interfacial rheometer that utilizes simultaneous pressure and bubble shape measurements to study the mechanical stability of mAbs under interfacial aging. It has a distinct advantage over methods utilizing the Young-Laplace equation, which incorrectly describes viscoelastic interfaces. We provide visual evidence of particle ejection from dilatated A/S interfaces and spectroscopic data of ejected mAb particles. These rheological studies frame a molecular understanding of the protein-protein interactions at the complex-fluid interface.
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