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Microfluidic device combining hydrodynamic and dielectrophoretic trapping for the controlled contact between single micro-sized objects and application to adhesion assays

The understanding of cell–cell and cell–matrix interactions via receptor and ligand binding relies on our ability to study the very first events of their contact. Of particular interest is the interaction between a T cell receptor and its cognate peptide–major histocompatibility complex. Indeed, ana...

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Autores principales: Lipp, Clémentine, Koebel, Laure, Loyon, Romain, Bolopion, Aude, Spehner, Laurie, Gauthier, Michaël, Borg, Christophe, Bertsch, Arnaud, Renaud, Philippe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10408363/
https://www.ncbi.nlm.nih.gov/pubmed/37458004
http://dx.doi.org/10.1039/d3lc00400g
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author Lipp, Clémentine
Koebel, Laure
Loyon, Romain
Bolopion, Aude
Spehner, Laurie
Gauthier, Michaël
Borg, Christophe
Bertsch, Arnaud
Renaud, Philippe
author_facet Lipp, Clémentine
Koebel, Laure
Loyon, Romain
Bolopion, Aude
Spehner, Laurie
Gauthier, Michaël
Borg, Christophe
Bertsch, Arnaud
Renaud, Philippe
author_sort Lipp, Clémentine
collection PubMed
description The understanding of cell–cell and cell–matrix interactions via receptor and ligand binding relies on our ability to study the very first events of their contact. Of particular interest is the interaction between a T cell receptor and its cognate peptide–major histocompatibility complex. Indeed, analyzing their binding kinetics and cellular avidity in large-scale low-cost and fast cell sorting would largely facilitate the access to cell-based cancer immunotherapies. We thus propose a microfluidic tool able to independently control two types of micro-sized objects, put them in contact for a defined time and probe their adhesion state. The device consists of hydrodynamic traps holding the first type of cell from below against the fluid flow, and a dielectrophoretic system to force the second type of object to remain in contact with the first one. First, the device is validated by performing an adhesion frequency assay between fibroblasts and fibronectin coated beads. Then, a study is conducted on the modification of the cellular environment to match the dielectrophoretic technology requirements without modifying the cell viability and interaction functionalities. Finally, we demonstrate the capability of the developed device to put cancer cells and a population of T cells in contact and show the discrimination between specific and non-specific interactions based on the pair lifetime. This proof-of-concept device lays the foundations for the development of next generation fast cell–cell interaction technologies.
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spelling pubmed-104083632023-08-09 Microfluidic device combining hydrodynamic and dielectrophoretic trapping for the controlled contact between single micro-sized objects and application to adhesion assays Lipp, Clémentine Koebel, Laure Loyon, Romain Bolopion, Aude Spehner, Laurie Gauthier, Michaël Borg, Christophe Bertsch, Arnaud Renaud, Philippe Lab Chip Chemistry The understanding of cell–cell and cell–matrix interactions via receptor and ligand binding relies on our ability to study the very first events of their contact. Of particular interest is the interaction between a T cell receptor and its cognate peptide–major histocompatibility complex. Indeed, analyzing their binding kinetics and cellular avidity in large-scale low-cost and fast cell sorting would largely facilitate the access to cell-based cancer immunotherapies. We thus propose a microfluidic tool able to independently control two types of micro-sized objects, put them in contact for a defined time and probe their adhesion state. The device consists of hydrodynamic traps holding the first type of cell from below against the fluid flow, and a dielectrophoretic system to force the second type of object to remain in contact with the first one. First, the device is validated by performing an adhesion frequency assay between fibroblasts and fibronectin coated beads. Then, a study is conducted on the modification of the cellular environment to match the dielectrophoretic technology requirements without modifying the cell viability and interaction functionalities. Finally, we demonstrate the capability of the developed device to put cancer cells and a population of T cells in contact and show the discrimination between specific and non-specific interactions based on the pair lifetime. This proof-of-concept device lays the foundations for the development of next generation fast cell–cell interaction technologies. The Royal Society of Chemistry 2023-07-14 /pmc/articles/PMC10408363/ /pubmed/37458004 http://dx.doi.org/10.1039/d3lc00400g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Lipp, Clémentine
Koebel, Laure
Loyon, Romain
Bolopion, Aude
Spehner, Laurie
Gauthier, Michaël
Borg, Christophe
Bertsch, Arnaud
Renaud, Philippe
Microfluidic device combining hydrodynamic and dielectrophoretic trapping for the controlled contact between single micro-sized objects and application to adhesion assays
title Microfluidic device combining hydrodynamic and dielectrophoretic trapping for the controlled contact between single micro-sized objects and application to adhesion assays
title_full Microfluidic device combining hydrodynamic and dielectrophoretic trapping for the controlled contact between single micro-sized objects and application to adhesion assays
title_fullStr Microfluidic device combining hydrodynamic and dielectrophoretic trapping for the controlled contact between single micro-sized objects and application to adhesion assays
title_full_unstemmed Microfluidic device combining hydrodynamic and dielectrophoretic trapping for the controlled contact between single micro-sized objects and application to adhesion assays
title_short Microfluidic device combining hydrodynamic and dielectrophoretic trapping for the controlled contact between single micro-sized objects and application to adhesion assays
title_sort microfluidic device combining hydrodynamic and dielectrophoretic trapping for the controlled contact between single micro-sized objects and application to adhesion assays
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10408363/
https://www.ncbi.nlm.nih.gov/pubmed/37458004
http://dx.doi.org/10.1039/d3lc00400g
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