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Timescale analysis for estimating upper limit perfusion rate in a microfluidic perfusion cell culture platform

Authors
Maeng, Joon-HoJeong, Hyo EunShin, Hyun-JoonKim, SehoonLee, Jong-ChulLee, JaeyoungChung, SeokLee, Sangyoup
Issue Date
10월-2015
Publisher
SPRINGER HEIDELBERG
Citation
MICROFLUIDICS AND NANOFLUIDICS, v.19, no.4, pp.777 - 786
Indexed
SCIE
SCOPUS
Journal Title
MICROFLUIDICS AND NANOFLUIDICS
Volume
19
Number
4
Start Page
777
End Page
786
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/92293
DOI
10.1007/s10404-015-1602-4
ISSN
1613-4982
Abstract
Proliferation characteristics of CHO-K1 cells were investigated under a variety of medium perfusion rate conditions in a microfluidic perfusion cell culture platform. Five microcavities of were adopted in order to minimize or isolate the shear effects on cell surfaces. Microchannels of serially connecting these microcavities created flow contractions and expansions repeatedly, resulting in two different diffusion and convection timescales through the platform. Average shear stresses on the bottom of microcavity were both numerically and analytically estimated, and medium flow was operated at rates where shear stress is below 2 mPa. Proliferation rates of CHO-K1 cells were investigated based both on population groups derived from the number of initially seeded cells and on the microcavity locations. Population groups showed minimal influences on proliferation rates, while proliferation rates increased clearly with medium perfusion rates. Strong effects of microcavity locations were observed on proliferation at . Such effects were analyzed by investigating the relationships of reaction, diffusion, and convection timescales associated with perfusion conditions. The ratio of diffusion timescale and convection timescale was suggested as a guideline to estimate the upper limit of perfusion rate in microfluidic perfusion cell culture platform.
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