Dean Flow Assisted Single Cell and Bead Encapsulation for High Performance Single Cell Expression Profiling
Author(s) -
Luoquan Li,
Ping Wu,
Zhaofeng Luo,
Lei Wang,
Weiping Ding,
Tao Wu,
Jinyu Chen,
Jinlong He,
Yi He,
Heran Wang,
Ying Chen,
Guibo Li,
Zida Li,
Liqun He
Publication year - 2019
Publication title -
acs sensors
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.055
H-Index - 57
ISSN - 2379-3694
DOI - 10.1021/acssensors.9b00171
Subject(s) - microfluidics , limiting , encapsulation (networking) , single cell analysis , nanotechnology , cell , cell encapsulation , materials science , drop (telecommunication) , chemistry , computer science , engineering , biochemistry , mechanical engineering , computer network , telecommunications
Droplet microfluidics-based platform (Drop-seq) has been shown to be a powerful tool for single cell expression profiling. Nevertheless, this platform required the simultaneous encapsulation of single cell and single barcoded bead, the incidence of which was very low, limiting its efficiency. Spiral channels were reported to focus the barcoded beads and thus increased the efficiency, but focusing of cells was not demonstrated, which could potentially further enhance the performance. Here, we designed spiral and serpentine channels to focus both bead and cell solutions and implemented this microfluidic design on Drop-seq. We characterized the effect of cell/bead concentration on encapsulation results and tested the performance by coencapsulating barcoded beads and human-mouse cell mixtures followed by sequencing. The results showed ∼300% and ∼40% increase in cell utilization rate compared to the traditional Drop-seq device and the device focusing beads alone, respectively. This chip design showed great potential for high efficiency single cell expression profiling.
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