Stem cells in microfluidics

被引:62
作者
Wu, Huei-Wen [1 ]
Lin, Chun-Che [1 ]
Lee, Gwo-Bin [1 ]
机构
[1] Natl Cheng Kung Univ, Dept Engn Sci, Tainan 701, Taiwan
关键词
IN-VITRO MODEL; HEMATOPOIETIC STEM; MESENCHYMAL STEM; EMBRYOID BODIES; DIELECTROPHORETIC SEPARATION; PROGENITOR CELLS; GENE-EXPRESSION; AMNIOTIC-FLUID; CANCER-CELLS; WHOLE-BLOOD;
D O I
10.1063/1.3528299
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Microfluidic techniques have been recently developed for cell-based assays. In microfluidic systems, the objective is for these microenvironments to mimic in vivo surroundings. With advantageous characteristics such as optical transparency and the capability for automating protocols, different types of cells can be cultured, screened, and monitored in real time to systematically investigate their morphology and functions under well-controlled microenvironments in response to various stimuli. Recently, the study of stem cells using microfluidic platforms has attracted considerable interest. Even though stem cells have been studied extensively using bench-top systems, an understanding of their behavior in in vivo-like microenvironments which stimulate cell proliferation and differentiation is still lacking. In this paper, recent cell studies using microfluidic systems are first introduced. The various miniature systems for cell culture, sorting and isolation, and stimulation are then systematically reviewed. The main focus of this review is on papers published in recent years studying stem cells by using microfluidic technology. This review aims to provide experts in microfluidics an overview of various microfluidic systems for stem cell research. (C) 2011 American Institute of Physics. [doi: 10.1063/1.3528299]
引用
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页数:26
相关论文
共 176 条
[1]   Characterization of a membrane-based gradient generator for use in cell-signaling studies [J].
Abhyankar, VV ;
Lokuta, MA ;
Huttenlocher, A ;
Beebe, DJ .
LAB ON A CHIP, 2006, 6 (03) :389-393
[2]  
Ai XN, 2009, IFPT'6: PROGRESS ON POST-GENOME TECHNOLOGIES, PROCEEDINGS, P154
[3]   Probing the role of multicellular organization in three-dimensional microenvironments [J].
Albrecht, DR ;
Underhill, GH ;
Wassermann, TB ;
Sah, RL ;
Bhatia, SN .
NATURE METHODS, 2006, 3 (05) :369-375
[4]   Nanoliter-scale synthesis of arrayed biomaterials and application to human embryonic stem cells [J].
Anderson, DG ;
Levenberg, S ;
Langer, R .
NATURE BIOTECHNOLOGY, 2004, 22 (07) :863-866
[5]   Microfluidic devices for cellomics: a review [J].
Andersson, H ;
van den Berg, A .
SENSORS AND ACTUATORS B-CHEMICAL, 2003, 92 (03) :315-325
[6]   Cell Migration Driven by Cooperative Substrate Deformation Patterns [J].
Angelini, Thomas E. ;
Hannezo, Edouard ;
Trepat, Xavier ;
Fredberg, Jeffrey J. ;
Weitz, David A. .
PHYSICAL REVIEW LETTERS, 2010, 104 (16)
[7]   DC-dielectrophoretic separation of microparticles using an oil droplet obstacle [J].
Barbulovic-Nad, I ;
Xuan, XC ;
Lee, JSH ;
Li, DQ .
LAB ON A CHIP, 2006, 6 (02) :274-279
[8]   Dielectrophoretic manipulation of particles and cells using insulating ridges in faceted prism microchannels [J].
Barrett, LM ;
Skulan, AJ ;
Singh, AK ;
Cummings, EB ;
Fiechtner, GJ .
ANALYTICAL CHEMISTRY, 2005, 77 (21) :6798-6804
[9]   Trends in the development of microfluidic cell biochips for in vitro hepatotoxicity [J].
Baudoin, Regis ;
Corlu, Anne ;
Griscom, Laurent ;
Legallais, Cecile ;
Leclerc, Eric .
TOXICOLOGY IN VITRO, 2007, 21 (04) :535-544
[10]   Turning brain into blood: A hematopoietic fate adopted by adult neural stem cells in vivo [J].
Bjornson, CRR ;
Rietze, RL ;
Reynolds, BA ;
Magli, MC ;
Vescovi, AL .
SCIENCE, 1999, 283 (5401) :534-537