A microfluidic platform for stimulating chondrocytes with dynamic compression

D Lee, A Erickson, AT Dudley… - Journal of visualized …, 2019 - pmc.ncbi.nlm.nih.gov
D Lee, A Erickson, AT Dudley, S Ryu
Journal of visualized experiments: JoVE, 2019pmc.ncbi.nlm.nih.gov
Mechanical stimuli are known to modulate biological functions of cells and tissues. Recent
studies have suggested that compressive stress alters growth plate cartilage architecture
and results in growth modulation of long bones of children. To determine the role of
compressive stress in bone growth, we created a microfluidic device actuated by pneumatic
pressure, to dynamically (or statically) compress growth plate chondrocytes embedded in
alginate hydrogel cylinders. In this article, we describe detailed methods for fabricating and …
Mechanical stimuli are known to modulate biological functions of cells and tissues. Recent studies have suggested that compressive stress alters growth plate cartilage architecture and results in growth modulation of long bones of children. To determine the role of compressive stress in bone growth, we created a microfluidic device actuated by pneumatic pressure, to dynamically (or statically) compress growth plate chondrocytes embedded in alginate hydrogel cylinders. In this article, we describe detailed methods for fabricating and characterizing this device. The advantages of our protocol are: 1) Five different magnitudes of compressive stress can be generated on five technical replicates in a single platform, 2) It is easy to visualize cell morphology via a conventional light microscope, 3) Cells can be rapidly isolated from the device after compression to facilitate downstream assays, and 4) The platform can be applied to study mechanobiology of any cell type that can grow in hydrogels.
pmc.ncbi.nlm.nih.gov
以上显示的是最相近的搜索结果。 查看全部搜索结果