Sliding walls: a new paradigm for fluidic actuation and protocol implementation in microfluidics.

Chemistry Engineering

Journal

Microsystems & nanoengineering
ISSN: 2055-7434
Titre abrégé: Microsyst Nanoeng
Pays: England
ID NLM: 101695458

Informations de publication

Date de publication:
2020
Historique:
received: 13 05 2019
revised: 04 11 2019
accepted: 07 11 2019
entrez: 27 9 2021
pubmed: 6 4 2020
medline: 6 4 2020
Statut: epublish

Résumé

Currently, fluidic control in microdevices is mainly achieved either by external pumps and valves, which are expensive and bulky, or by valves integrated in the chip. Numerous types of internal valves or actuation methods have been proposed, but they generally impose difficult compromises between performance and fabrication complexity. We propose here a new paradigm for actuation in microfluidic devices based on rigid or semi-rigid walls with transversal dimensions of hundreds of micrometres that are able to slide within a microfluidic chip and to intersect microchannels with hand-driven or translation stage-based actuation. With this new concept for reconfigurable microfluidics, the implementation of a wide range of functionalities was facilitated and allowed for no or limited dead volume, low cost and low footprint. We demonstrate here several fluidic operations, including on/off or switch valving, where channels are blocked or reconfigured depending on the sliding wall geometry. The valves sustain pressures up to 30 kPa. Pumping and reversible compartmentalisation of large microfluidic chambers were also demonstrated. This last possibility was applied to a "4D" migration assay of dendritic cells in a collagen gel. Finally, sliding walls containing a hydrogel-based membrane were developed and used to concentrate, purify and transport biomolecules from one channel to another, such functionality involving complex fluidic transport patterns not possible in earlier microfluidic devices. Overall, this toolbox is compatible with "soft lithography" technology, allowing easy implementation within usual fabrication workflows for polydimethylsiloxane chips. This new technology opens the route to a variety of microfluidic applications, with a focus on simple, hand-driven devices for point-of-care or biological laboratories with low or limited equipment and resources.

Identifiants

pubmed: 34567633
doi: 10.1038/s41378-019-0125-7
pii: 125
pmc: PMC8433466
doi:

Types de publication

Journal Article

Langues

eng

Pagination

18

Informations de copyright

© The Author(s) 2020.

Déclaration de conflit d'intérêts

Conflict of interestThe technology described in this article is covered in part by European patent application 16745661.5, belonging to Institut Curie and Centre National de la Recherche Scientifique. The authors declare that they have no conflict of interest.

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Auteurs

Bastien Venzac (B)

Laboratoire Physico Chimie Curie, Institut Curie, PSL Research University, CNRS UMR168, 75005 Paris, France.
Sorbonne Universités, UPMC Univ Paris 06, 75005 Paris, France.
Institut Pierre-Gilles de Gennes, PSL Research University, 75005 Paris, France.

Yang Liu (Y)

Laboratoire Physico Chimie Curie, Institut Curie, PSL Research University, CNRS UMR168, 75005 Paris, France.
Sorbonne Universités, UPMC Univ Paris 06, 75005 Paris, France.
Institut Pierre-Gilles de Gennes, PSL Research University, 75005 Paris, France.

Ivan Ferrante (I)

Laboratoire Physico Chimie Curie, Institut Curie, PSL Research University, CNRS UMR168, 75005 Paris, France.
Sorbonne Universités, UPMC Univ Paris 06, 75005 Paris, France.
Institut Pierre-Gilles de Gennes, PSL Research University, 75005 Paris, France.

Pablo Vargas (P)

Institut Pierre-Gilles de Gennes, PSL Research University, 75005 Paris, France.
Institut Curie, PSL Research University, CNRS UMR 144, 75005 Paris, France.

Ayako Yamada (A)

Laboratoire Physico Chimie Curie, Institut Curie, PSL Research University, CNRS UMR168, 75005 Paris, France.
Sorbonne Universités, UPMC Univ Paris 06, 75005 Paris, France.
Institut Pierre-Gilles de Gennes, PSL Research University, 75005 Paris, France.

Rémi Courson (R)

LAAS-CNRS, Université de Toulouse, CNRS, 3, 1400 Toulouse, France.

Marine Verhulsel (M)

Laboratoire Physico Chimie Curie, Institut Curie, PSL Research University, CNRS UMR168, 75005 Paris, France.
Sorbonne Universités, UPMC Univ Paris 06, 75005 Paris, France.
Institut Pierre-Gilles de Gennes, PSL Research University, 75005 Paris, France.

Laurent Malaquin (L)

LAAS-CNRS, Université de Toulouse, CNRS, 3, 1400 Toulouse, France.

Jean-Louis Viovy (JL)

Laboratoire Physico Chimie Curie, Institut Curie, PSL Research University, CNRS UMR168, 75005 Paris, France.
Sorbonne Universités, UPMC Univ Paris 06, 75005 Paris, France.
Institut Pierre-Gilles de Gennes, PSL Research University, 75005 Paris, France.

Stéphanie Descroix (S)

Laboratoire Physico Chimie Curie, Institut Curie, PSL Research University, CNRS UMR168, 75005 Paris, France.
Sorbonne Universités, UPMC Univ Paris 06, 75005 Paris, France.
Institut Pierre-Gilles de Gennes, PSL Research University, 75005 Paris, France.

Classifications MeSH