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  4. Studying sprouting angiogenesis under combination of oxygen gradients and co-culture of fibroblasts using microfluidic cell culture model
 
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Studying sprouting angiogenesis under combination of oxygen gradients and co-culture of fibroblasts using microfluidic cell culture model

Journal
Materials Today Bio
Journal Volume
21
Date Issued
2023-08-01
Author(s)
Hsu, Heng Hua
Ko, Ping Liang
Peng, Chien Chung
Cheng, Ya Jen
HSIAO-MEI WU  
Tung, Yi Chung
DOI
10.1016/j.mtbio.2023.100703
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85164221479&doi=10.1016%2fj.mtbio.2023.100703&partnerID=40&md5=3fa44924172fa1ade18bde78efb7a2a5
https://scholars.lib.ntu.edu.tw/handle/123456789/634246
URL
https://api.elsevier.com/content/abstract/scopus_id/85164221479
Abstract
Sprouting angiogenesis is an essential process for expanding vascular systems under various physiological and pathological conditions. In this paper, a microfluidic device capable of integrating a hydrogel matrix for cell culture and generating stable oxygen gradients is developed to study the sprouting angiogenesis of endothelial cells under combinations of oxygen gradients and co-culture of fibroblast cells. The endothelial cells can be cultured as a monolayer endothelium inside the device to mimic an existing blood vessel, and the hydrogel without or with fibroblast cells cultured in it provides a matrix next to the formed endothelium for three-dimensional sprouting of the endothelial cells. Oxygen gradients can be stably established inside the device for cell culture using the spatially-confined chemical reaction method. Using the device, the sprouting angiogenesis under combinations of oxygen gradients and co-culture of fibroblast cells is systematically studied. The results show that the oxygen gradient and the co-culture of fibroblast cells in the hydrogel can promote sprouting of the endothelial cells into the hydrogel matrix by altering cytokines in the culture medium and the physical properties of the hydrogel. The developed device provides a powerful in vitro model to investigate sprouting angiogenesis under various in vivo-like microenvironments.
Subjects
Cell co-culture | Fibroblast | Microfluidics | Oxygen gradients | Sprouting angiogenesis
Type
journal article

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