Hudson Steven D, Sarangapani Prasad, Pathak Jai A, Migler Kalman B
Polymers and Complex Fluids Group, Materials Science and Engineering Division, National Institute of Standards and Technology, Gaithersburg, Maryland, 20899.
J Pharm Sci. 2015 Feb;104(2):678-85. doi: 10.1002/jps.24201. Epub 2014 Oct 10.
Rheometry is an important characterization tool for therapeutic protein solutions because it determines syringeability and relates indirectly to solution stability and thermodynamic interactions. Despite the maturity of rheometry, there remains a need for a rheometer that meets the following three needs of the biopharamaceutical industry: small volume; large dynamic range of shear rates; and no air-sample interface. Here, we report the development of a miniaturized capillary rheometer that meets these needs and is potentially scalable to a multiwell format. These measurements consume only a few microliters of sample and have an uncertainty of a few percent. We demonstrate its performance on monoclonal antibody solutions at different concentrations and temperatures. The instrument has a dynamic range of approximately three decades (in shear rate) and can measure Newtonian, shear thinning, and yielding behaviors, which are representative of the different solution behaviors typically encountered. We compare our microliter capillary rheometer with existing instruments to describe the range of parameter space covered by our device.
流变学是治疗性蛋白质溶液的一种重要表征工具,因为它能确定溶液的可注射性,并间接与溶液稳定性和热力学相互作用相关。尽管流变学已成熟,但仍需要一种满足生物制药行业以下三个需求的流变仪:小体积;大剪切速率动态范围;无气-样界面。在此,我们报告了一种满足这些需求且有可能扩展到多孔格式的小型化毛细管流变仪的开发。这些测量仅消耗几微升样品,且不确定度为百分之几。我们展示了其在不同浓度和温度下单克隆抗体溶液上的性能。该仪器的动态范围约为三个数量级(剪切速率方面),能够测量牛顿流体、剪切变稀和屈服行为,这些行为代表了通常遇到的不同溶液行为。我们将我们的微升毛细管流变仪与现有仪器进行比较,以描述我们设备所覆盖的参数空间范围。