在多层微流控芯片中集成 8 个并行细胞分选器,通过热可逆凝胶化聚合物的溶胶-凝胶转变进行流量控制。

Integration in a multilayer microfluidic chip of 8 parallel cell sorters with flow control by sol-gel transition of thermoreversible gelation polymer.

机构信息

Laboratory of Bio-analytical Chemistry, Graduate School of Pharmaceutical Sciences, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-0033, Japan.

出版信息

Lab Chip. 2010 Oct 7;10(19):2559-65. doi: 10.1039/c004192k. Epub 2010 Aug 5.

Abstract

Microfluidic systems have significant implications in the field of cell separation since they could provide platforms with inexpensive, disposable and sterile structures. Here, we present a novel strategy to integrate microfluidic sorters into a single chip for high throughput sorting. Our parallel sorter consists of a microfluidic chip with a three-dimensional channel network that utilizes flow switching by a heat-induced sol-gel transition of thermoreversible gelation polymer. The 8 parallel sheathed sample flows were realized by injecting sample and buffer solutions into only 2 inlets. The sheathed flows enabled disposal of unwanted sample waste without laser irradiation, and collection of wanted sample upon irradiation. As an application of the sorter, two kinds of fluorescent microspheres were separated with recovery ratio and purity of 70% or 90% at throughputs of about 100 or 20 particles per second, respectively. Next, Escherichia coli cells expressing green fluorescent protein were separated from those expressing DsRed with recovery ratio and purity of 90% at a throughput of about 20 cells per second.

摘要

微流控系统在细胞分离领域具有重要意义,因为它们可以提供廉价、一次性和无菌的结构平台。在这里,我们提出了一种将微流控分选器集成到单个芯片中进行高通量分选的新策略。我们的并行分选器由一个具有三维通道网络的微流控芯片组成,该网络利用热诱导溶胶-凝胶转变的热可逆凝胶聚合物的流切换来实现。通过仅向 2 个入口注入样品和缓冲溶液,实现了 8 个并行鞘流。鞘流使得在不需要激光照射的情况下处理不需要的样品废物,并在照射时收集所需的样品。作为分选器的应用,两种荧光微球在约 100 个/秒或 20 个/秒的流速下分别以 70%或 90%的回收率和纯度进行了分离。接下来,从表达 DsRed 的大肠杆菌细胞中分离出表达绿色荧光蛋白的大肠杆菌细胞,其回收率和纯度分别为 90%,流速约为 20 个/秒。

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