Institute of Industrial Science, The University of Tokyo, Meguro-ku, Japan.
Lab Chip. 2010 Sep 21;10(18):2443-8. doi: 10.1039/c004986g. Epub 2010 Aug 10.
In this study, we have developed a meander-shaped dynamic microfluidic technology that allows us to pair two different types of microbeads in a trapping site. The dynamic microfluidic technology comprises implemented modifications of a conventional dynamic microarray design such as: (i) the combination of a meander-shaped by-pass channel and a trapping channel with a hydrodynamic trapping site and (ii) line-symmetrical formation of the by-pass and trapping channels. Using these modifications, we have successfully trapped different types of sample in one trapping site, and constructed an array of paired beads of different type such as polystyrene beads or hydrogel beads made of agarose, collagen or alginate. We found that this meander-shaped dynamic microfluidic technology is applicable for the observation of interactions between the paired beads such as molecular diffusion.
在本研究中,我们开发了一种曲折形动态微流控技术,使我们能够在捕获位点上对两种不同类型的微珠进行配对。动态微流控技术包括对传统动态微阵列设计的实施修改,例如:(i)将曲折形旁路通道与具有流体动力捕获位点的捕获通道相结合;(ii)旁路和捕获通道的线对称形成。利用这些修改,我们成功地在一个捕获位点捕获了不同类型的样本,并构建了不同类型的配对珠的阵列,例如聚苯乙烯珠或由琼脂糖、胶原蛋白或藻酸盐制成的水凝胶珠。我们发现,这种曲折形动态微流控技术适用于观察配对珠之间的相互作用,例如分子扩散。