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PMID: 15791337 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Human neural stem cell growth and differentiation in a gradient-generating microfluidic device.

Lab on a chip ·Vol. 5 ·No. 4 ·2005-04-00 ·Pages 401-6

Chung BG, Flanagan LA, Rhee SW, Schwartz PH, Lee AP, Monuki ES, Jeon NL

Abstract

This paper describes a gradient-generating microfluidic platform for optimizing proliferation and differentiation of neural stem cells (NSCs) in culture. Microfluidic technology has great potential to improve stem cell (SC) cultures, whose promise in cell-based therapies is limited by the inability to precisely control their behavior in culture. Compared to traditional culture tools, microfluidic platforms should provide much greater control over cell microenvironment and rapid optimization of media composition using relatively small numbers of cells. Our platform exposes cells to a concentration gradient of growth factors under continuous flow, thus minimizing autocrine and paracrine signaling. Human NSCs (hNSCs) from the developing cerebral cortex were cultured for more than 1 week in the microfluidic device while constantly exposed to a continuous gradient of a growth factor (GF) mixture containing epidermal growth factor (EGF), fibroblast growth factor 2 (FGF2) and platelet-derived growth factor (PDGF). Proliferation and differentiation of NSCs into astrocytes were monitored by time-lapse microscopy and immunocytochemistry. The NSCs remained healthy throughout the entire culture period, and importantly, proliferated and differentiated in a graded and proportional fashion that varied directly with GF concentration. These concentration-dependent cellular responses were quantitatively similar to those measured in control chambers built into the device and in parallel cultures using traditional 6-well plates. This gradient-generating microfluidic platform should be useful for a wide range of basic and applied studies on cultured cells, including SCs.

MeSH Terms
Astrocytes/chemistry,cytology,drug effects Cell Differentiation/drug effects Cell Proliferation/drug effects Equipment Design Growth Substances/chemistry,pharmacology Humans Infant Microfluidics/instrumentation,methods Reproducibility of Results Stem Cells/chemistry,cytology,drug effects
Chemicals
Growth Substances
Authors & Affiliations
7 authors, click to expand affiliations / ORCID
Chung Bong Geun
Department of Biomedical Engineering, Henry Samueli School of Engineering, University of California Irvine, CA 92697-2715, USA.
Flanagan Lisa A
Rhee Seog Woo
Schwartz Philip H
Lee Abraham P
Monuki Edwin S
Jeon Noo Li
Article Info
Journal
Lab on a chip
Abbr.
Lab Chip
ISSN
1473-0197
Published
2005-04-00
Epub
2005-00-09
Pages
401-6
Language
English
Region
England
NLM ID
101128948
Subset
IM
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