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1Systematic characterization of cleanroom-free fabricated macrovalves,demonstrating pumps and mixers for automated fluid handling tuned for organ-on-chip applications显示文摘Integrated valves enable automated control in microfuidic systems,as they can be applied for mixing,pumping and compartmentalization purposes.Such automation would be highly valuable for applications in organ-on-chip(OoC)systems.However,OoC systems typically have channel dimensions in the range of hundreds of micrometers,which is an order of magnitude larger than those of typical microfluidic valves.The most-used fabrication process for integrated,normally open polydimethylsiloxane(PDMS)valves requires a reflow photoresist that limits the achievable channel height.In addition,the low stroke volumes of these valves make it challenging to achieve flow rates of microliters per minute,which are typically required in OoC systems.Herein,we present a mechanical'macrovalve'fabricated by multilayer soft lithography using micromilled direct molds.We demonstrate that these valves can close off rounded channels of up to 700μm high and 1000μm wide.Furthermore,we used these macrovalves to create a peristaltic pump with a pumping rate of up to 48μL/min and a mixing and metering device that can achieve the complete mixing of a volume of 6.4μL within only 17 s.An initial cell culture experiment demonstrated that a device with integrated macrovalves is biocompatible and allows the cell culture of endothelial cells over multiple days under continuous perfusion and automated medium refreshment.Elsbeth G.B.M.Bossink Anke R.Vollertsen Joshua T.Loessberg-Zahl Andries D.van der Meer Loe l.Segerink Mathieu Odijk 2022Microsystems & Nanoengineering2022,8,3:0
2On-chip immunomagnetic bead swarm based on magnetic actuation and mechanical vibration for biological detection显示文摘Immunomagnetic bead(IMB)-based detection has great potential for biomedical applications.Passive and active strategies,including microfluidics and magnetic actuation methods,have been developed to mix IMBs and analytes efficiently.However,cost-effective on-site detection using a simple microfluidic chip is challenging,and miniaturization of the magnetic driving device is imperative for portability.In this study,we propose a novel mixing method for an on-chip IMB swarm via magnetic actuation and mechanical vibration.A microfluidic chip system coupled with double spiral magnetic coils and a vibration motor was fabricated.The aggregation behavior of IMBs under magnetic fields and the diffusion behavior of the IMB swarm under mechanical vibration were analyzed in detail.Based on the synergetic effects of magnetic actuation and mechanical vibration,we achieved the highly efficient capturing of Vibrio parahaemolyticus DNA and goat anti-human immunoglobulin G by mixing the IMB swarm with the microfluidic chip.In this case,the antigen detection rate could reach~94.4%.Given its fascinating features,such IMB-microfluidic detection demonstrates significant potential for biomedical applications.PAN JingWen GONG De SAEED Rehan CAO KaiHeng CHEN KeHan SU Yuan ZHANG WenQiang XU WenTao CAI Jun ZHANG DeYuan 2022Science China(Technological Sciences)2022,65,11:0
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