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Reliable permeability assay system in a microfluidic device mimicking cerebral vasculatures

Authors
Yeon, Ju HunNa, DokyunChoi, KyungsunRyu, Seung-WookChoi, ChulheePark, Je-Kyun
Issue Date
Dec-2012
Publisher
SPRINGER
Keywords
Blood-brain barrier; Microfluidics; Cell trapping; Permeability assay
Citation
BIOMEDICAL MICRODEVICES, v.14, no.6, pp 1141 - 1148
Pages
8
Journal Title
BIOMEDICAL MICRODEVICES
Volume
14
Number
6
Start Page
1141
End Page
1148
URI
https://scholarworks.bwise.kr/cau/handle/2019.sw.cau/43515
DOI
10.1007/s10544-012-9680-5
ISSN
1387-2176
1572-8781
Abstract
Since most of the bioavailable drugs are impermeable through the blood-brain barrier (BBB), development of a rapid and reliable permeability assay system has been a challenge in drug discovery targeting central nervous system (CNS). Here, we designed a microfluidic device to monitor the drug permeability into the CNS. Human umbilical vein endothelial cells (HUVECs) were shortly (2 similar to 3 h) incubated with astrocyte-conditioned medium after being trapped on microholes in the microfluidic device and tested for chip-based permeability measurement of drugs. The measured permeability values were highly correlated with those measured by conventional in vitro methods and the brain uptake index representing the quantity of transported substances across the in vivo BBB of rats. Using the microfluidic device, we could easily monitor the effect of hydrogen peroxide on the trans-endothelial permeability, which are consistent with the finding that the same treatment disrupted the formation of tight junctions between endothelial cells. Considering relatively short period of time needed for endothelial cell culture and ability to monitor the BBB physiology continuously, we propose that this novel system can be used as an invaluable first-line tool for CNS-related drug development.
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창의ICT공과대학 (융합공학부)
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