生物医学工程
肝组织
环磷酰胺
炸薯条
微流控
体外
微流控芯片
化学
材料科学
纳米技术
计算机科学
生物
工程类
外科
医学
化疗
内分泌学
电信
生物化学
作者
Jin‐Young Kim,David A. Fluri,Rosemarie Marchan,Kurt Boonen,Soumyaranjan Mohanty,Prateek Singh,Seddik Hammad,Bart Landuyt,Jan G. Hengstler,Jens M. Kelm,Andreas Hierlemann,Olivier Frey
标识
DOI:10.1016/j.jbiotec.2015.01.003
摘要
Rational development of more physiologic in vitro models includes the design of robust and flexible 3D-microtissue-based multi-tissue devices, which allow for tissue–tissue interactions. The developed device consists of multiple microchambers interconnected by microchannels. Pre-formed spherical microtissues are loaded into the microchambers and cultured under continuous perfusion. Gravity-driven flow is generated from on-chip reservoirs through automated chip-tilting without any need for additional tubing and external pumps. This tilting concept allows for operating up to 48 devices in parallel in order to test various drug concentrations with a sufficient number of replicates. For a proof of concept, rat liver and colorectal tumor microtissues were interconnected on the chip and cultured during 8 days in the presence of the pro-drug cyclophosphamide. Cyclophosphamide has a significant impact on tumor growth but only after bio-activation by the liver. This effect was only observed in the perfused and interconnected co-cultures of different microtissue types on-chip, whereas the discontinuous transfer of supernatant via pipetting from static liver microtissues that have been treated with cyclophosphamide did not significantly affect tumor growth. The results indicate the utility and multi-tissue functionality of this platform. The importance of continuous medium circulation and tissue interaction is highlighted.
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