Literature DB >> 19417906

Controlled deposition of cells in sealed microfluidics using flow velocity boundaries.

Robert D Lovchik1, Fabio Bianco, Michela Matteoli, Emmanuel Delamarche.   

Abstract

We present a method for depositing cells in a sealed microfluidic device. The device consists of a poly(dimethylsiloxane) (PDMS) microfluidic network (MFN) sealed with a Si chip. The Si chip has vias and ports that are connected to high-precision motorized pumps. The surfaces of the PDMS MFN are homogeneously coated with fibronectin cell adhesion molecules (CAMs). Flow velocity boundaries are created between vicinal microfluidic structures to prevent or permit deposition of cells in specific regions of the MFN. In narrow flow paths, cells experience a wall shear stress from the fast-moving liquid that overcomes the initial adhesion of the cells with CAMs. Conversely, cells can adhere to CAMs in larger flow paths such as cell chambers inside which the velocity of the liquid and the shear stress are reduced. Interactively changing pumping rates makes the critical velocity (the velocity at which cells deposit in the chamber but not elsewhere) easy to find. The transparent PDMS MFN allows both real-time visualization of the deposition process and cellular assays. We illustrate this method using N9 mouse microglia cells. In one experiment, approximately 75 microglia are deposited per min in a approximately 0.5 microL chamber. The deposited cells remain viable, as assessed from staining and biofunctional assays. This method is simple, reliable, fast, and flexible, and therefore is an attractive technique for depositing cells in microfluidic systems for numerous applications.

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Year:  2009        PMID: 19417906     DOI: 10.1039/b820198f

Source DB:  PubMed          Journal:  Lab Chip        ISSN: 1473-0189            Impact factor:   6.799


  3 in total

1.  A three dimensional thermoplastic microfluidic chip for robust cell capture and high resolution imaging.

Authors:  Guillaume Mottet; Karla Perez-Toralla; Ezgi Tulukcuoglu; Francois-Clement Bidard; Jean-Yves Pierga; Irena Draskovic; Arturo Londono-Vallejo; Stephanie Descroix; Laurent Malaquin; Jean Louis Viovy
Journal:  Biomicrofluidics       Date:  2014-04-07       Impact factor: 2.800

2.  Computational fluid dynamics modelling of microfluidic channel for dielectrophoretic BioMEMS application.

Authors:  Wan Shi Low; Nahrizul Adib Kadri; Wan Abu Bakar bin Wan Abas
Journal:  ScientificWorldJournal       Date:  2014-07-20

3.  Mesenchymal stem cells from tumor microenvironment favour breast cancer stem cell proliferation, cancerogenic and metastatic potential, via ionotropic purinergic signalling.

Authors:  A Maffey; C Storini; C Diceglie; C Martelli; L Sironi; C Calzarossa; N Tonna; R Lovchik; E Delamarche; L Ottobrini; F Bianco
Journal:  Sci Rep       Date:  2017-10-13       Impact factor: 4.379

  3 in total

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