Segmenting growth of endothelial cells in 6-well plates on an orbital shaker for mechanobiological studies
File(s)JoVE_Pang_Ghim_SPIRAL v2.docx (5.22 MB)
Accepted version
Author(s)
Weinberg, Peter
Pang, Kuin
Ghim, Mean
Arshad, Mehwish
Wang, Xiaomeng
Type
Journal Article
Abstract
Shear stress induced on the arterial wall by the flow of blood affects endothelial cell morphology and function. Low magnitude, oscillatory and multidirectional shear stresses have all been postulated to stimulate a pro-atherosclerotic phenotype in endothelial cells, whereas high magnitude and unidirectional or uniaxial shear are thought to promote endothelial homeostasis. These hypotheses require further investigation, but traditional in vitro techniques have limitations, and are particularly poor at imposing multidirectional shear stresses on cells.
One method that is gaining increasing use is to culture endothelial cells in standard multi-well plates on the platform of an orbital shaker; in this simple, low-cost, high-throughput and chronic method, the swirling medium produces different patterns and magnitudes of shear, including multidirectional shear, in different parts of the well. However, it has a significant limitation: cells in one region, exposed to one type of flow, may release mediators into the medium that affect cells in other parts of the well, exposed to different flows, hence distorting the apparent relation between flow and phenotype.
Here we present an easy and affordable modification of the method that allows cells to be exposed only to specific shear stress characteristics. Cells seeding is restricted to a defined region of the well by coating the region of interest with fibronectin, followed by passivation using passivating solution. Subsequently, the plates can be swirled on the shaker, resulting in exposure of cells to well-defined shear profiles such as low magnitude multidirectional shear or high magnitude uniaxial shear, depending on their location. As before, the use of standard cell-culture plasticware allows straightforward further analysis of the cells. The modification has already allowed the demonstration of soluble mediators, released from endothelium under defined shear stress characteristics, that affect cells located elsewhere in the well.
One method that is gaining increasing use is to culture endothelial cells in standard multi-well plates on the platform of an orbital shaker; in this simple, low-cost, high-throughput and chronic method, the swirling medium produces different patterns and magnitudes of shear, including multidirectional shear, in different parts of the well. However, it has a significant limitation: cells in one region, exposed to one type of flow, may release mediators into the medium that affect cells in other parts of the well, exposed to different flows, hence distorting the apparent relation between flow and phenotype.
Here we present an easy and affordable modification of the method that allows cells to be exposed only to specific shear stress characteristics. Cells seeding is restricted to a defined region of the well by coating the region of interest with fibronectin, followed by passivation using passivating solution. Subsequently, the plates can be swirled on the shaker, resulting in exposure of cells to well-defined shear profiles such as low magnitude multidirectional shear or high magnitude uniaxial shear, depending on their location. As before, the use of standard cell-culture plasticware allows straightforward further analysis of the cells. The modification has already allowed the demonstration of soluble mediators, released from endothelium under defined shear stress characteristics, that affect cells located elsewhere in the well.
Date Issued
2021-06-03
Date Acceptance
2020-11-20
Citation
Journal of Visualized Experiments, 2021, 2021 (172)
ISSN
1940-087X
Publisher
MyJove Corporation
Journal / Book Title
Journal of Visualized Experiments
Volume
2021
Issue
172
Copyright Statement
© 2021 JoVE Journal of Visualized Experiments
License URL
Subjects
Science & Technology
Multidisciplinary Sciences
Science & Technology - Other Topics
CULTURED ENDOTHELIUM
SHEAR-STRESS
FLOW
Atherosclerosis
Cell Culture Techniques
Cells, Cultured
Endothelial Cells
Endothelium, Vascular
Humans
In Vitro Techniques
Stress, Mechanical
Endothelium, Vascular
Cells, Cultured
Endothelial Cells
Humans
Cell Culture Techniques
Stress, Mechanical
Atherosclerosis
In Vitro Techniques
0601 Biochemistry and Cell Biology
1701 Psychology
1702 Cognitive Sciences
Publication Status
Published
Article Number
ARTN e61817