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微流控芯片中花粉粒的定位用于单细胞分析。

Microfluidic positioning of pollen grains in lab-on-a-chip for single cell analysis.

机构信息

Optical-Bio Microsystems Laboratory, Department of Mechanical and Industrial Engineering, Concordia University, Montréal, QC H3G 1M8, Canada.

Optical-Bio Microsystems Laboratory, Department of Mechanical and Industrial Engineering, Concordia University, Montréal, QC H3G 1M8, Canada.

出版信息

J Biosci Bioeng. 2014 Apr;117(4):504-11. doi: 10.1016/j.jbiosc.2013.10.001. Epub 2013 Nov 12.

Abstract

A lab-on-a-chip device with a knot shaped microfluidic network is presented to enable trapping of single pollen grains at the entrances of a series of microchannels. This set-up serves to create identical growth conditions for serially arranged tip growing plant cells such as pollen tubes. The design consists of an inlet to introduce the pollen suspension into the chip, three outlets to evacuate excess medium or cells, a distribution chamber to guide the pollen grains toward the growth microchannels and a serial arrangement of microchannels with different geometries connected to the distribution chamber. These microchannels are to harbor the individual pollen tubes. Two different criteria were established to assess the efficiency and optimize the device: trapping probability and uniformity of fluid flow conditions within the microchannels. The performance of different geometries of the microfluidic network was numerically analyzed and experimentally tested.

摘要

一种具有绳结状微流控网络的片上实验室设备被提出,以实现将单个花粉粒捕获在一系列微通道的入口处。这种装置用于为顺序排列的顶端生长植物细胞(如花粉管)创造相同的生长条件。该设计包括一个入口,用于将花粉悬浮液引入芯片;三个出口,用于排出多余的介质或细胞;一个分配室,用于引导花粉粒进入生长微通道;以及一个与分配室相连的、具有不同几何形状的串联微通道排列。这些微通道用于容纳单个花粉管。建立了两个不同的标准来评估效率并优化设备:捕获概率和微通道内流体流动条件的均匀性。对不同几何形状的微流控网络的性能进行了数值分析和实验测试。

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