DocumentCode :
1723043
Title :
Formation of hydrogel membranes in microchannels and its applications
Author :
Choi, Eunpyo ; Chang, Hyung-Kwan ; Jun, Indong ; Park, Kyung Min ; Shin, Heungsoo ; Park, Ki Dong ; Park, Jungyul
Author_Institution :
Dept. of Mech. Eng., Sogang Univ., Seoul, South Korea
fYear :
2011
Firstpage :
1890
Lastpage :
1894
Abstract :
Formation of membranes in microfluidic channels have been paid attention for their great potentials in separation of components, cell culture supports for tissue engineering and chemical process involving molecular transports. In this study, we introduce a few techniques for formation of hydrogel membranes in microfluidic channels and their applications. First, using enzymatically crosslinkable hydrogels and microfluidic techniques, we realize the width-controllable hydrogel membrane, which was difficult to adjust so far. Second, we suggest a simple one step stamping method for the in-situ formation of hydrogel membranes with various patterns and closed loop shapes. Finally, as the applications of hydrogel membrane, we proposed a multiple directional chemical gradients method, which mimics the real cell environments. Using the proposed membrane formation method, the stable multiple chemical generation was established and the chemotactic response of bacteria was successfully monitored. These results suggest that our suggested systems can be used to understand many cellular activity including cell adhesion and migration directed by chemotaxis or complex diffusions from biological fluids in three dimensional microstructures.
Keywords :
biotechnology; chemical engineering; hydrogels; membranes; microchannel flow; microorganisms; separation; tissue engineering; bacteria chemotactic response; biological fluids; cell adhesion; cell culture supports; cell migration; cellular activity; chemical generation; chemical process; chemotaxis; closed loop shapes; complex diffusions; component separation; enzymatically-crosslinkable hydrogels; hydrogel membrane formation; in-situ formation; microchannels; microfluidic channels; microfluidic techniques; molecular transports; multiple-directional chemical gradient method; one-step stamping method; three-dimensional microstructures; tissue engineering; width-controllable hydrogel membrane; Biomembranes; Chemicals; Fluorescence; Microchannel; Microfluidics; Microorganisms; Silicon;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Robotics and Biomimetics (ROBIO), 2011 IEEE International Conference on
Conference_Location :
Karon Beach, Phuket
Print_ISBN :
978-1-4577-2136-6
Type :
conf
DOI :
10.1109/ROBIO.2011.6181566
Filename :
6181566
Link To Document :
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