Vilimi Zsófia, Pápay Zsófia Edit, Basa Bálint, Orekhova Xeniya, Kállai-Szabó Nikolett, Antal István
Department of Pharmaceutics, Semmelweis University, Hőgyes E. Street 7-9, 1092 Budapest, Hungary.
Gels. 2024 Jul 16;10(7):464. doi: 10.3390/gels10070464.
Measuring the viscosity of pharmaceutical dosage forms is a crucial process. Viscosity provides information about the stability of the composition, the release rate of the drug, bioavailability, and, in the case of injectable drug formulations, even the force required for injection. However, measuring viscosity is a complex task with numerous challenges, especially for non-Newtonian materials, which include most pharmaceutical formulations, such as gels. Selecting the appropriate shear rate is critical. Since viscosity in many systems is highly temperature-dependent, stable temperature control is necessary during the measurement. Using microfluidics technology, it is now possible to perform rheological characterization and conduct fast and accurate measurements. Small sample volumes (even below 500 µL) are required, and viscosity determination can be carried out over a wide range of shear rates. Nevertheless, the pharmaceutical application of viscometers operating on the principle of microfluidics is not yet widespread. In our work, we compare the results of measurements taken with a microfluidic chip-based viscometer on different pharmaceutical forms (gels, solution) with those obtained using a traditional rotational viscometer, evaluating the relative advantages and disadvantages of the different methods. The microfluidics-based method enables time- and sample-efficient viscosity analysis of the examined pharmaceutical forms.
测量药物剂型的粘度是一个关键过程。粘度提供了有关组合物稳定性、药物释放速率、生物利用度的信息,对于注射用药物制剂而言,甚至还能提供注射所需的力的信息。然而,测量粘度是一项复杂的任务,面临众多挑战,尤其是对于非牛顿材料,其中包括大多数药物制剂,如凝胶。选择合适的剪切速率至关重要。由于许多系统中的粘度高度依赖温度,因此在测量过程中需要稳定的温度控制。利用微流控技术,现在可以进行流变学表征并进行快速准确的测量。所需样品体积小(甚至低于500微升),并且可以在很宽的剪切速率范围内进行粘度测定。尽管如此,基于微流控原理运行的粘度计在药物领域的应用尚不广泛。在我们的工作中,我们将基于微流控芯片的粘度计对不同药物剂型(凝胶、溶液)的测量结果与使用传统旋转粘度计获得的结果进行比较,评估不同方法的相对优缺点。基于微流控的方法能够对所研究的药物剂型进行省时且高效的粘度分析。