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Rapid Prototyping of Polystyrene-based Multi-well Screening Platform for Cell-Surface Topography Investigation

Title
Rapid Prototyping of Polystyrene-based Multi-well Screening Platform for Cell-Surface Topography Investigation
Authors
안성아
Date Issued
2017
Publisher
포항공과대학교
Abstract
The study of surface topographic effect on cell behaviors is getting attention these days due to its potential clinical applications such as regenerating injured tissues, drug screening, etc. In this study, I suggest a simple and rapid prototyping method for a novel multi-well screening platform which contains a polystyrene (PS) bottom plate possessing different micrometer-scale surface topographies fabricated by the hot embossing process using a polydimethylsiloxane (PDMS) mold. To obtain high replication quality with the reduced geometric deformation of surface topography, the processing condition for replication of the PS bottom plate was optimized by the design of experiments. The fabricated PS bottom plate is chemically bonded with a polymethyl methacrylate (PMMA) partition whose function is preventing cross-contamination of soluble factors from a cell culture medium by isolating one type of surface topographies into an individual well. The condition optimization of hot embossing process and chemical bonding result in a total fabrication time for one screening platform ~ 10 min. Given that the present platform is based on PS, which is the most widely used material in cell-based studies for the past decades, it is advantageous to compare the results from the present platform with the previously validated results performed in the conventional PS cell-culture wares. The effects of various micropillar arrays on the proliferation of human adipose-derived stem cells were examined using the present multi-well screening platform. Through those fabrication and stem cell-based experiments, it was shown that there is a possibility of considering the suggested fabrication method to be used for fabricating a standard screening platform for effective surface topography which regulates cell behaviors.
URI
http://postech.dcollection.net/jsp/common/DcLoOrgPer.jsp?sItemId=000002374880
https://oasis.postech.ac.kr/handle/2014.oak/92681
Article Type
Thesis
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