Department of Chemical Engineering and Materials Science, Stevens Institute of Technology, 1 Castle Point on Hudson, Hoboken, NJ, 07030, USA.
Center for Discovery and Innovation, Hackensack Meridian Health, Nutley, NJ, 07110, USA.
Biomed Microdevices. 2020 Aug 24;22(3):58. doi: 10.1007/s10544-020-00515-2.
Here we developed a 96-well plate-based pumpless microfluidic device to mimic bidirectional oscillatory shear stress experienced by osteoblasts at the endosteal niche located at the interface between bone and bone marrow. The culture device was designed to be high-throughput with 32 open top culture chambers for convenient cell seeding and staining. Mathematical modeling was used to simulate the control of oscillatory shear stress with the peak stress in the range of 0.3 to 50 mPa. Osteoblasts, cultured under oscillatory shear stress, were found to be highly viable and significantly aligned along the direction of flow. The modeling and experimental results demonstrate for the first time that cells can be cultured under controllable oscillatory shear stress in the open top culture chamber and pumpless configurations.
在这里,我们开发了一种基于 96 孔板的无泵微流控装置,以模拟位于骨与骨髓界面的骨内膜龛中骨细胞所经历的双向振荡剪切应力。该培养装置设计为高通量,有 32 个开放式顶部培养室,便于细胞接种和染色。数学建模用于模拟振荡剪切应力的控制,峰值应力范围为 0.3 至 50 mPa。在振荡剪切应力下培养的成骨细胞具有高度活力,并沿着流动方向显著对齐。建模和实验结果首次证明,细胞可以在开放式顶部培养室和无泵配置下,在可控的振荡剪切应力下进行培养。