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Microfluidic Device for Droplet Pairing by Combining Droplet Railing and Floating Trap Arrays

Droplet microfluidics are characterized by the generation and manipulation of discrete volumes of solutions, generated with the use of immiscible phases. Those droplets can then be controlled, transported, analyzed or their content modified. In this wide droplet microfluidic toolbox, no means are av...

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Autores principales: Duchamp, Margaux, Arnaud, Marion, Bobisse, Sara, Coukos, George, Harari, Alexandre, Renaud, Philippe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8470175/
https://www.ncbi.nlm.nih.gov/pubmed/34577720
http://dx.doi.org/10.3390/mi12091076
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author Duchamp, Margaux
Arnaud, Marion
Bobisse, Sara
Coukos, George
Harari, Alexandre
Renaud, Philippe
author_facet Duchamp, Margaux
Arnaud, Marion
Bobisse, Sara
Coukos, George
Harari, Alexandre
Renaud, Philippe
author_sort Duchamp, Margaux
collection PubMed
description Droplet microfluidics are characterized by the generation and manipulation of discrete volumes of solutions, generated with the use of immiscible phases. Those droplets can then be controlled, transported, analyzed or their content modified. In this wide droplet microfluidic toolbox, no means are available to generate, in a controlled manner, droplets co-encapsulating to aqueous phases. Indeed, current methods rely on random co-encapsulation of two aqueous phases during droplet generation or the merging of two random droplets containing different aqueous phases. In this study, we present a novel droplet microfluidic device to reliably and efficiently co-encapsulate two different aqueous phases in micro-droplets. In order to achieve this, we combined existing droplet microfluidic modules in a novel way. The different aqueous phases are individually encapsulated in droplets of different sizes. Those droplet populations are then filtered in order to position each droplet type towards its adequate trapping compartment in traps of a floating trap array. Single droplets, each containing a different aqueous phase, are thus paired and then merged. This pairing at high efficiency is achieved thanks to a unique combination of floating trap arrays, a droplet railing system and a droplet size-based filtering mechanism. The microfluidic chip design presented here provides a filtering threshold with droplets larger than 35 μm (big droplets) being deviated to the lower rail while droplets smaller than 20 μm (small droplets) remain on the upper rail. The effects of the rail height and the distance between the two (upper and lower) rails were investigated. The optimal trap dimensions provide a trapping efficiency of 100% for small and big droplets with a limited double trapping (both compartments of the traps filled with the same droplet type) of 5%. The use of electrocoalescence enables the generation of a droplet while co-encapsulating two aqueous phases. Using the presented microfluidic device libraries of 300 droplets, dual aqueous content can be generated in less than 30 min.
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spelling pubmed-84701752021-09-27 Microfluidic Device for Droplet Pairing by Combining Droplet Railing and Floating Trap Arrays Duchamp, Margaux Arnaud, Marion Bobisse, Sara Coukos, George Harari, Alexandre Renaud, Philippe Micromachines (Basel) Article Droplet microfluidics are characterized by the generation and manipulation of discrete volumes of solutions, generated with the use of immiscible phases. Those droplets can then be controlled, transported, analyzed or their content modified. In this wide droplet microfluidic toolbox, no means are available to generate, in a controlled manner, droplets co-encapsulating to aqueous phases. Indeed, current methods rely on random co-encapsulation of two aqueous phases during droplet generation or the merging of two random droplets containing different aqueous phases. In this study, we present a novel droplet microfluidic device to reliably and efficiently co-encapsulate two different aqueous phases in micro-droplets. In order to achieve this, we combined existing droplet microfluidic modules in a novel way. The different aqueous phases are individually encapsulated in droplets of different sizes. Those droplet populations are then filtered in order to position each droplet type towards its adequate trapping compartment in traps of a floating trap array. Single droplets, each containing a different aqueous phase, are thus paired and then merged. This pairing at high efficiency is achieved thanks to a unique combination of floating trap arrays, a droplet railing system and a droplet size-based filtering mechanism. The microfluidic chip design presented here provides a filtering threshold with droplets larger than 35 μm (big droplets) being deviated to the lower rail while droplets smaller than 20 μm (small droplets) remain on the upper rail. The effects of the rail height and the distance between the two (upper and lower) rails were investigated. The optimal trap dimensions provide a trapping efficiency of 100% for small and big droplets with a limited double trapping (both compartments of the traps filled with the same droplet type) of 5%. The use of electrocoalescence enables the generation of a droplet while co-encapsulating two aqueous phases. Using the presented microfluidic device libraries of 300 droplets, dual aqueous content can be generated in less than 30 min. MDPI 2021-09-06 /pmc/articles/PMC8470175/ /pubmed/34577720 http://dx.doi.org/10.3390/mi12091076 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Duchamp, Margaux
Arnaud, Marion
Bobisse, Sara
Coukos, George
Harari, Alexandre
Renaud, Philippe
Microfluidic Device for Droplet Pairing by Combining Droplet Railing and Floating Trap Arrays
title Microfluidic Device for Droplet Pairing by Combining Droplet Railing and Floating Trap Arrays
title_full Microfluidic Device for Droplet Pairing by Combining Droplet Railing and Floating Trap Arrays
title_fullStr Microfluidic Device for Droplet Pairing by Combining Droplet Railing and Floating Trap Arrays
title_full_unstemmed Microfluidic Device for Droplet Pairing by Combining Droplet Railing and Floating Trap Arrays
title_short Microfluidic Device for Droplet Pairing by Combining Droplet Railing and Floating Trap Arrays
title_sort microfluidic device for droplet pairing by combining droplet railing and floating trap arrays
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8470175/
https://www.ncbi.nlm.nih.gov/pubmed/34577720
http://dx.doi.org/10.3390/mi12091076
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