Literature DB >> 15514025

Computerized microfluidic cell culture using elastomeric channels and Braille displays.

Wei Gu1, Xiaoyue Zhu, Nobuyuki Futai, Brenda S Cho, Shuichi Takayama.   

Abstract

Computer-controlled microfluidics would advance many types of cellular assays and microscale tissue engineering studies wherever spatiotemporal changes in fluidics need to be defined. However, this goal has been elusive because of the limited availability of integrated, programmable pumps and valves. This paper demonstrates how a refreshable Braille display, with its grid of 320 vertically moving pins, can power integrated pumps and valves through localized deformations of channel networks within elastic silicone rubber. The resulting computerized fluidic control is able to switch among: (i) rapid and efficient mixing between streams, (ii) multiple laminar flows with minimal mixing between streams, and (iii) segmented plug-flow of immiscible fluids within the same channel architecture. The same control method is used to precisely seed cells, compartmentalize them into distinct subpopulations through channel reconfiguration, and culture each cell subpopulation for up to 3 weeks under perfusion. These reliable microscale cell cultures showed gradients of cellular behavior from C2C12 myoblasts along channel lengths, as well as differences in cell density of undifferentiated myoblasts and differentiation patterns, both programmable through different flow rates of serum-containing media. This technology will allow future microscale tissue or cell studies to be more accessible, especially for high-throughput, complex, and long-term experiments. The microfluidic actuation method described is versatile and computer programmable, yet simple, well packaged, and portable enough for personal use.

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Year:  2004        PMID: 15514025      PMCID: PMC528755          DOI: 10.1073/pnas.0404353101

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  33 in total

Review 1.  Microfluidic technology for assisted reproduction.

Authors:  D Beebe; M Wheeler; H Zeringue; E Walters; S Raty
Journal:  Theriogenology       Date:  2002-01-01       Impact factor: 2.740

2.  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

3.  Rapid microfluidic mixing.

Authors:  Timothy J Johnson; David Ross; Laurie E Locascio
Journal:  Anal Chem       Date:  2002-01-01       Impact factor: 6.986

4.  Surface-directed liquid flow inside microchannels.

Authors:  B Zhao; J S Moore; D J Beebe
Journal:  Science       Date:  2001-02-09       Impact factor: 47.728

5.  Microfabricated 384-lane capillary array electrophoresis bioanalyzer for ultrahigh-throughput genetic analysis.

Authors:  Charles A Emrich; Huijun Tian; Igor L Medintz; Richard A Mathies
Journal:  Anal Chem       Date:  2002-10-01       Impact factor: 6.986

6.  Microfluidic device for single-cell analysis.

Authors:  Aaron R Wheeler; William R Throndset; Rebecca J Whelan; Andrew M Leach; Richard N Zare; Yish Hann Liao; Kevin Farrell; Ian D Manger; Antoine Daridon
Journal:  Anal Chem       Date:  2003-07-15       Impact factor: 6.986

7.  Enhancement of microfluidic mixing using time pulsing.

Authors:  Ian Glasgow; Nadine Aubry
Journal:  Lab Chip       Date:  2003-04-30       Impact factor: 6.799

8.  Solvent-resistant photocurable liquid fluoropolymers for microfluidic device fabrication [corrected].

Authors:  Jason P Rolland; R Michael Van Dam; Derek A Schorzman; Stephen R Quake; Joseph M DeSimone
Journal:  J Am Chem Soc       Date:  2004-03-03       Impact factor: 15.419

9.  A myogenic cell line with altered serum requirements for differentiation.

Authors:  D Yaffe; O Saxel
Journal:  Differentiation       Date:  1977       Impact factor: 3.880

10.  Rapid Prototyping of Microfluidic Systems in Poly(dimethylsiloxane).

Authors:  D C Duffy; J C McDonald; O J Schueller; G M Whitesides
Journal:  Anal Chem       Date:  1998-12-01       Impact factor: 6.986

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  75 in total

1.  Solving medical problems with BioMEMS.

Authors:  Erkin Seker; Jong Hwan Sung; Michael L Shuler; Martin L Yarmush
Journal:  IEEE Pulse       Date:  2011-11       Impact factor: 0.924

Review 2.  Rethinking in vitro embryo culture: new developments in culture platforms and potential to improve assisted reproductive technologies.

Authors:  Gary D Smith; Shuichi Takayama; Jason E Swain
Journal:  Biol Reprod       Date:  2012-03-08       Impact factor: 4.285

Review 3.  Fundamentals of microfluidic cell culture in controlled microenvironments.

Authors:  Edmond W K Young; David J Beebe
Journal:  Chem Soc Rev       Date:  2010-02-01       Impact factor: 54.564

4.  Characterization and resolution of evaporation-mediated osmolality shifts that constrain microfluidic cell culture in poly(dimethylsiloxane) devices.

Authors:  Yun Seok Heo; Lourdes M Cabrera; Jonathan W Song; Nobuyuki Futai; Yi-Chung Tung; Gary D Smith; Shuichi Takayama
Journal:  Anal Chem       Date:  2007-02-01       Impact factor: 6.986

5.  A microfluidic culture platform for CNS axonal injury, regeneration and transport.

Authors:  Anne M Taylor; Mathew Blurton-Jones; Seog Woo Rhee; David H Cribbs; Carl W Cotman; Noo Li Jeon
Journal:  Nat Methods       Date:  2005-08       Impact factor: 28.547

Review 6.  Microscale technologies for tissue engineering and biology.

Authors:  Ali Khademhosseini; Robert Langer; Jeffrey Borenstein; Joseph P Vacanti
Journal:  Proc Natl Acad Sci U S A       Date:  2006-02-13       Impact factor: 11.205

7.  Microfluidic System for Automated Cell-based Assays.

Authors:  Philip J Lee; Navid Ghorashian; Terry A Gaige; Paul J Hung
Journal:  JALA Charlottesv Va       Date:  2007-12

8.  A pneumatic valve controlled microdevice for bioanalysis.

Authors:  Xiaohu Zhou; Xuechang Zhou; Bo Zheng
Journal:  Biomicrofluidics       Date:  2013-10-21       Impact factor: 2.800

Review 9.  Microfluidic devices for cell cultivation and proliferation.

Authors:  Masoomeh Tehranirokh; Abbas Z Kouzani; Paul S Francis; Jagat R Kanwar
Journal:  Biomicrofluidics       Date:  2013-10-29       Impact factor: 2.800

10.  3D-printed Quake-style microvalves and micropumps.

Authors:  Yuan-Sheng Lee; Nirveek Bhattacharjee; Albert Folch
Journal:  Lab Chip       Date:  2018-04-17       Impact factor: 6.799

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