Driessen Rob, Zhao Feihu, Hofmann Sandra, Bouten Carlijn, Sahlgren Cecilia, Stassen Oscar
Department of Biomedical Engineering, Eindhoven University of Technology, 5600 MB Eindhoven, The Netherlands.
Institute for Complex Molecular Systems, Eindhoven University of Technology, 5600 MB Eindhoven, The Netherlands.
Micromachines (Basel). 2020 May 29;11(6):552. doi: 10.3390/mi11060552.
Endothelial cells sense and respond to shear stress. Different in vitro model systems have been used to study the cellular responses to shear stress, but these platforms do not allow studies on high numbers of cells under uniform and controllable shear stress. The annular dish, or dish-in-a-dish (DiaD), on the orbital shaker has been proposed as an accessible system to overcome these challenges. However, the influence of the DiaD design and the experimental parameters on the shear stress patterns is not known. In this study, we characterize different designs and experimental parameters (orbit size, speed and fluid height) using computational fluid dynamics. We optimize the DiaD for an atheroprotective flow, combining high shear stress levels with a low oscillatory shear index (OSI). We find that orbit size determines the DiaD design and parameters. The shear stress levels increase with increasing rotational speed and fluid height. Based on our optimization, we experimentally compare the 134/56 DiaD with regular dishes for cellular alignment and , , and expression. The calculated OSI has a strong impact on alignment and gene expression, emphasizing the importance of characterizing shear profiles in orbital setups.
内皮细胞能够感知并对剪切应力做出反应。不同的体外模型系统已被用于研究细胞对剪切应力的反应,但这些平台无法在均匀且可控的剪切应力下对大量细胞进行研究。环形培养皿,即碟中碟(DiaD),在轨道振荡器上已被提议作为一种可用于克服这些挑战的系统。然而,DiaD设计和实验参数对剪切应力模式的影响尚不清楚。在本研究中,我们使用计算流体动力学来表征不同的设计和实验参数(轨道大小、速度和流体高度)。我们针对具有抗动脉粥样硬化作用的血流优化了DiaD,使其兼具高剪切应力水平和低振荡剪切指数(OSI)。我们发现轨道大小决定了DiaD的设计和参数。剪切应力水平随转速和流体高度的增加而升高。基于我们的优化,我们通过实验比较了134/56 DiaD与常规培养皿对细胞排列以及 、 、 和 表达的影响。计算得出的OSI对细胞排列和基因表达有很大影响,这突出了在轨道设置中表征剪切轮廓的重要性。