Literature DB >> 22550555

Linear conversion of pressure into concentration, rapid switching of concentration, and generation of linear ramps of concentration in a microfluidic device.

Micha Adler1, Alex Groisman.   

Abstract

Mixing of liquids to produce solutions with different concentrations is one of the basic functionalities of microfluidic devices. Generation of specific temporal patterns of concentration in microfluidic devices is an important technique to study responses of cells and model organisms to variations in the chemical composition of their environment. Here, we present a simple microfluidic network that linearly converts pressure at an inlet into concentration of a soluble reagent in an observation region and also enables independent concurrent linear control of concentrations of two reagents. The microfluidic device has an integrated mixer channel with chaotic three-dimensional flow that facilitates rapid switching of concentrations in a continuous range. A simple pneumatic setup generating linear ramps of pressure is used to produce smooth linear ramps and triangular waves of concentration with different slopes. The use of chaotic vs. laminar mixers is discussed in the context of microfluidic devices providing rapid switching and generating temporal waves of concentration.

Entities:  

Year:  2012        PMID: 22550555      PMCID: PMC3338547          DOI: 10.1063/1.3687379

Source DB:  PubMed          Journal:  Biomicrofluidics        ISSN: 1932-1058            Impact factor:   2.800


  47 in total

1.  Chaotic mixer for microchannels.

Authors:  Abraham D Stroock; Stephan K W Dertinger; Armand Ajdari; Igor Mezic; Howard A Stone; George M Whitesides
Journal:  Science       Date:  2002-01-25       Impact factor: 47.728

2.  Mixing by polymers: experimental test of decay regime of mixing.

Authors:  T Burghelea; E Segre; V Steinberg
Journal:  Phys Rev Lett       Date:  2004-04-19       Impact factor: 9.161

3.  Diffusion-based and long-range concentration gradients of multiple chemicals for bacterial chemotaxis assays.

Authors:  Minseok Kim; Taesung Kim
Journal:  Anal Chem       Date:  2010-10-27       Impact factor: 6.986

4.  A microfluidic chemostat for experiments with bacterial and yeast cells.

Authors:  Alex Groisman; Caroline Lobo; HoJung Cho; J Kyle Campbell; Yann S Dufour; Ann M Stevens; Andre Levchenko
Journal:  Nat Methods       Date:  2005-09       Impact factor: 28.547

5.  Time-resolved responses to chemoattractant, characteristic of the front and tail of Dictyostelium cells.

Authors:  Martin Etzrodt; Hellen C F Ishikawa; Jeremie Dalous; Annette Müller-Taubenberger; Till Bretschneider; Günther Gerisch
Journal:  FEBS Lett       Date:  2006-11-20       Impact factor: 4.124

6.  Dissecting a circuit for olfactory behaviour in Caenorhabditis elegans.

Authors:  Sreekanth H Chalasani; Nikos Chronis; Makoto Tsunozaki; Jesse M Gray; Daniel Ramot; Miriam B Goodman; Cornelia I Bargmann
Journal:  Nature       Date:  2007-11-01       Impact factor: 49.962

7.  Generation of dynamic chemical signals with microfluidic C-DACs.

Authors:  L Chen; F Azizi; C H Mastrangelo
Journal:  Lab Chip       Date:  2007-05-31       Impact factor: 6.799

8.  Signal processing by the HOG MAP kinase pathway.

Authors:  Pascal Hersen; Megan N McClean; L Mahadevan; Sharad Ramanathan
Journal:  Proc Natl Acad Sci U S A       Date:  2008-05-14       Impact factor: 11.205

9.  Fine temporal control of the medium gas content and acidity and on-chip generation of series of oxygen concentrations for cell cultures.

Authors:  Mark Polinkovsky; Edgar Gutierrez; Andre Levchenko; Alex Groisman
Journal:  Lab Chip       Date:  2009-02-17       Impact factor: 6.799

10.  High-resolution temperature-concentration diagram of alpha-synuclein conformation obtained from a single Förster resonance energy transfer image in a microfluidic device.

Authors:  Virginia Vandelinder; Allan Chris M Ferreon; Yann Gambin; Ashok A Deniz; Alex Groisman
Journal:  Anal Chem       Date:  2009-08-15       Impact factor: 6.986

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