Vascular smooth muscle cells (VSMCs) are constantly exposed to cyclic stretch in the body, which makes it beneficial to study the effects of cyclic stretch on VSMCs. In this study, we developed a poly(dimethyl siloxane) (PDMS) compact six-well device that can be used to study the combined effect of cyclic strain and various growth factors on cultured VSMCs. Cell adhesion, alignment, and proliferation under 10% or 20% cyclic strain at 1 Hz were studied using this surface-enhanced PDMS device. The combined effects of cyclic strain with either transforming growth factor-, vascular endothelial growth factor, fibroblast growth factor, or epidermal growth factor on VSMC proliferation was also examined. Results showed that VSMCs adhered well on the surface-enhanced multiwell device and they aligned perpendicularly to the direction of the cyclic strain. Cell proliferation was inhibited by 10% cyclic strain at 1 Hz compared with static control. The mitogenic effects of the growth factor were less potent under either 10% or 20% cyclic strain. With simple modification to accommodate more wells, this device could potentially be a useful tool for more economical, high throughput screening application.
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Research Papers
A Novel Multiwell Device to Study Vascular Smooth Muscle Cell Responses Under Cyclic Strain
Uday Tata,
Uday Tata
Department of Electrical Engineering,
University of Texas at Arlington
, Arlington, TX 76019
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Hao Xu,
Hao Xu
Dallas Veterans Affairs Medical Center
, Dallas, TX 75216; Department of Bioengineering, University of Texas at Arlington
, Arlington, TX 76019
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Smitha M. N. Rao,
Smitha M. N. Rao
Department of Electrical Engineering,
University of Texas at Arlington
, Arlington, TX 76019
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Cheng-Jen Chuong,
Cheng-Jen Chuong
Department of Bioengineering,
University of Texas at Arlington
, Arlington, TX 76019
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Kytai T. Nguyen,
Kytai T. Nguyen
Department of Bioengineering,
University of Texas at Arlington
, Arlington, TX 76019
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J.-C. Chiao
J.-C. Chiao
Department of Electrical Engineering, and Department of Bioengineering,
e-mail: jcchiao@uta.edu
University of Texas at Arlington
, Arlington, TX 76019
Search for other works by this author on:
Uday Tata
Department of Electrical Engineering,
University of Texas at Arlington
, Arlington, TX 76019
Hao Xu
Dallas Veterans Affairs Medical Center
, Dallas, TX 75216; Department of Bioengineering, University of Texas at Arlington
, Arlington, TX 76019
Smitha M. N. Rao
Department of Electrical Engineering,
University of Texas at Arlington
, Arlington, TX 76019
Cheng-Jen Chuong
Department of Bioengineering,
University of Texas at Arlington
, Arlington, TX 76019
Kytai T. Nguyen
Department of Bioengineering,
University of Texas at Arlington
, Arlington, TX 76019
J.-C. Chiao
Department of Electrical Engineering, and Department of Bioengineering,
University of Texas at Arlington
, Arlington, TX 76019e-mail: jcchiao@uta.edu
J. Nanotechnol. Eng. Med. May 2011, 2(2): 021007 (6 pages)
Published Online: May 16, 2011
Article history
Received:
March 8, 2011
Revised:
March 15, 2011
Online:
May 16, 2011
Published:
May 16, 2011
Citation
Tata, U., Xu, H., Rao, S. M. N., Chuong, C., Nguyen, K. T., and Chiao, J. (May 16, 2011). "A Novel Multiwell Device to Study Vascular Smooth Muscle Cell Responses Under Cyclic Strain." ASME. J. Nanotechnol. Eng. Med. May 2011; 2(2): 021007. https://doi.org/10.1115/1.4003928
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