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使用 PDMS 基微流控装置中的横向互连方法减少微粒吸附。

Reduction in microparticle adsorption using a lateral interconnection method in a PDMS-based microfluidic device.

机构信息

Department of Bio and Brain Engineering, Korea Advanced Institute of Science and Technology (KAIST), Yuseong-gu, Daejeon, Republic of Korea.

出版信息

Electrophoresis. 2013 Dec;34(22-23):3119-25. doi: 10.1002/elps.201300274. Epub 2013 Oct 14.

Abstract

Microparticle adsorption on microchannel walls occurs frequently due to nonspecific interactions, decreasing operational performance in pressure-driven microfluidic systems. However, it is essential for delicate manipulation of microparticles or cells to maintain smooth fluid traffic. Here, we report a novel microparticle injection technique, which prevents particle loss, assisted by sample injection along the direction of fluid flow. Sample fluids, including microparticles, mammalian (U937), and green algae (Chlorella vulgaris) cells, were injected directly via a through hole drilled in the lateral direction, resulting in a significant reduction in microparticle attachment. For digital microfluidic application, the proposed regime achieved a twofold enhancement of single-cell encapsulation compared to the conventional encapsulation rate, based on a Poisson distribution, by reducing the number of empty droplets. This novel interconnection method can be straightforwardly integrated as a microparticle or cell injection component in integrated microfluidic systems.

摘要

由于非特异性相互作用,微粒经常会吸附在微通道壁上,从而降低压力驱动微流控系统的运行性能。然而,对于微粒或细胞的精细操控,保持平稳的流体流动是至关重要的。在这里,我们报告了一种新的微粒注入技术,通过沿流体流动方向注入样品,辅助防止微粒损失。样品流体,包括微粒、哺乳动物(U937)和绿藻(Chlorella vulgaris)细胞,直接通过在侧面钻一个通孔注入,显著减少了微粒的附着。对于数字微流控应用,与传统的封装率相比,基于泊松分布,通过减少空液滴的数量,所提出的方案实现了单细胞封装率的两倍提高。这种新颖的互连方法可以作为微粒或细胞注入组件直接集成到集成微流控系统中。

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