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Time Sequential Single-Cell Patterning with High Efficiency and High Density

Single-cell capture plays an important role in single-cell manipulation and analysis. This paper presents a microfluidic device for deterministic single-cell trapping based on the hydrodynamic trapping mechanism. The device is composed of an S-shaped loop channel and thousands of aligned trap units....

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Autores principales: Liu, Yang, Ren, Dahai, Ling, Xixin, Liang, Weibin, Li, Jing, You, Zheng, Yalikun, Yaxiaer, Tanaka, Yo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6264106/
https://www.ncbi.nlm.nih.gov/pubmed/30380644
http://dx.doi.org/10.3390/s18113672
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author Liu, Yang
Ren, Dahai
Ling, Xixin
Liang, Weibin
Li, Jing
You, Zheng
Yalikun, Yaxiaer
Tanaka, Yo
author_facet Liu, Yang
Ren, Dahai
Ling, Xixin
Liang, Weibin
Li, Jing
You, Zheng
Yalikun, Yaxiaer
Tanaka, Yo
author_sort Liu, Yang
collection PubMed
description Single-cell capture plays an important role in single-cell manipulation and analysis. This paper presents a microfluidic device for deterministic single-cell trapping based on the hydrodynamic trapping mechanism. The device is composed of an S-shaped loop channel and thousands of aligned trap units. This arrayed structure enables each row of the device to be treated equally and independently, as it has row periodicity. A theoretical model was established and a simulation was conducted to optimize the key geometric parameters, and the performance was evaluated by conducting experiments on MCF-7 and Jurkat cells. The results showed improvements in single-cell trapping ability, including loading efficiency, capture speed, and the density of the patterned cells. The optimized device can achieve a capture efficiency of up to 100% and single-cell capture efficiency of up to 95%. This device offers 200 trap units in an area of 1 mm(2), which enables 100 single cells to be observed simultaneously using a microscope with a 20× objective lens. One thousand cells can be trapped sequentially within 2 min; this is faster than the values obtained with previously reported devices. Furthermore, the cells can also be recovered by reversely infusing solutions. The structure can be easily extended to a large scale, and a patterned array with 32,000 trap sites was accomplished on a single chip. This device can be a powerful tool for high-throughput single-cell analysis, cell heterogeneity investigation, and drug screening.
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spelling pubmed-62641062018-12-12 Time Sequential Single-Cell Patterning with High Efficiency and High Density Liu, Yang Ren, Dahai Ling, Xixin Liang, Weibin Li, Jing You, Zheng Yalikun, Yaxiaer Tanaka, Yo Sensors (Basel) Article Single-cell capture plays an important role in single-cell manipulation and analysis. This paper presents a microfluidic device for deterministic single-cell trapping based on the hydrodynamic trapping mechanism. The device is composed of an S-shaped loop channel and thousands of aligned trap units. This arrayed structure enables each row of the device to be treated equally and independently, as it has row periodicity. A theoretical model was established and a simulation was conducted to optimize the key geometric parameters, and the performance was evaluated by conducting experiments on MCF-7 and Jurkat cells. The results showed improvements in single-cell trapping ability, including loading efficiency, capture speed, and the density of the patterned cells. The optimized device can achieve a capture efficiency of up to 100% and single-cell capture efficiency of up to 95%. This device offers 200 trap units in an area of 1 mm(2), which enables 100 single cells to be observed simultaneously using a microscope with a 20× objective lens. One thousand cells can be trapped sequentially within 2 min; this is faster than the values obtained with previously reported devices. Furthermore, the cells can also be recovered by reversely infusing solutions. The structure can be easily extended to a large scale, and a patterned array with 32,000 trap sites was accomplished on a single chip. This device can be a powerful tool for high-throughput single-cell analysis, cell heterogeneity investigation, and drug screening. MDPI 2018-10-29 /pmc/articles/PMC6264106/ /pubmed/30380644 http://dx.doi.org/10.3390/s18113672 Text en © 2018 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Liu, Yang
Ren, Dahai
Ling, Xixin
Liang, Weibin
Li, Jing
You, Zheng
Yalikun, Yaxiaer
Tanaka, Yo
Time Sequential Single-Cell Patterning with High Efficiency and High Density
title Time Sequential Single-Cell Patterning with High Efficiency and High Density
title_full Time Sequential Single-Cell Patterning with High Efficiency and High Density
title_fullStr Time Sequential Single-Cell Patterning with High Efficiency and High Density
title_full_unstemmed Time Sequential Single-Cell Patterning with High Efficiency and High Density
title_short Time Sequential Single-Cell Patterning with High Efficiency and High Density
title_sort time sequential single-cell patterning with high efficiency and high density
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6264106/
https://www.ncbi.nlm.nih.gov/pubmed/30380644
http://dx.doi.org/10.3390/s18113672
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