生物芯片
氧气
微尺度化学
微流控
材料科学
纳米技术
分压
聚合物
聚二甲基硅氧烷
化学工程
化学
复合材料
有机化学
数学
工程类
数学教育
作者
Drago Sticker,Mario Rothbauer,Josef Ehgartner,Christoph Steininger,Olga Liske,Robert Liska,Winfried Neuhaus,Torsten Mayr,Tommy Haraldsson,Jörg P. Kutter,Peter Ertl
标识
DOI:10.1021/acsami.8b19641
摘要
Oxygen plays a pivotal role in cellular homeostasis, and its partial pressure determines cellular function and fate. Consequently, the ability to control oxygen tension is a critical parameter for recreating physiologically relevant in vitro culture conditions for mammalian cells and microorganisms. Despite its importance, most microdevices and organ-on-a-chip systems to date overlook oxygen gradient parameters because controlling oxygen often requires bulky and expensive external instrumental setups. To overcome this limitation, we have adapted an off-stoichiometric thiol-ene-epoxy polymer to efficiently remove dissolved oxygen to below 1 hPa and also integrated this modified polymer into a functional biochip material. The relevance of using an oxygen scavenging material in microfluidics is that it makes it feasible to readily control oxygen depletion rates inside the biochip by simply changing the surface-to-volume aspect ratio of the microfluidic channel network as well as by changing the temperature and curing times during the fabrication process.
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