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Low-temperature bonded glass-membrane microfluidic device for in vitro organ-on-a-chip cell culture models
Conference paper

Low-temperature bonded glass-membrane microfluidic device for in vitro organ-on-a-chip cell culture models

Kyall J. Pocock, Xiaofang Gao, Chenxi Wang, Craig Priest, Clive A. Prestidge, Kazuma Mawatari, Takehiko Kitamori and Benjamin Thierry
Proceedings of SPIE - The International Society for Optical Engineering, Vol.9668, 96680W
2015

Abstract

cell co-culture intestine-on-a-chip low temperature bonding microfluidics organ-on-a-chip Electronic Optical and Magnetic Materials Condensed Matter Physics Computer Science Applications Applied Mathematics Electrical and Electronic Engineering
The integration of microfluidics with living biological systems has paved the way to the exciting concept of 'organson-a-chip', which aims at the development of advanced in vitro models that replicate the key features of human organs. Glass based devices have long been utilised in the field of microfluidics but the integration of alternative functional elements within multi-layered glass microdevices, such as polymeric membranes, remains a challenge. To this end, we have extended a previously reported approach for the low-temperature bonding of glass devices that enables the integration of a functional polycarbonate porous membrane. The process was initially developed and optimised on specialty low-temperature bonding equipment (μTAS2001, Bondtech, Japan) and subsequently adapted to more widely accessible hot embosser units (EVG520HE Hot Embosser, EVG, Austria). The key aspect of this method is the use of low temperatures compatible with polymeric membranes. Compared to borosilicate glass bonding (650 °C) and quartz/fused silica bonding (1050 °C) processes, this method maintains the integrity and functionality of the membrane (T 150 °C for polycarbonate). Leak tests performed showed no damage or loss of integrity of the membrane for up to 150 hours, indicating sufficient bond strength for long term cell culture. A feasibility study confirmed the growth of dense and functional monolayers of Caco-2 cells within 5 days.

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