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Optimization of microfluidic single cell trapping for long-term on-chip culture
- Source :
- Lab on a Chip. 10:857
- Publication Year :
- 2010
- Publisher :
- Royal Society of Chemistry (RSC), 2010.
-
Abstract
- The poor efficiency of microfluidic single cell trapping is currently restricting the full potential of state-of-the-art single cell analyses. Using fluid dynamics simulations in combination with particle image velocimetry to systematically optimize trap architectures, we present a microfluidic chip with enhanced single cell trapping and on-chip culture performance. Upon optimization of trap geometries, we measured trapping efficiencies of up to 97%. Our device also enables the stable, relatively long-term culture of individual non-adherent mammalian cells in high-throughput without a significant decrease in cell viability. As a first application of this platform we demonstrate the automated separation of the two daughter cells generated upon single cell division. The reliable trapping and re-trapping of mammalian cells should for example provide the fundament for novel types of investigations in stem cell and tumour cell biology, which depend on reliable tracking of genealogical relationships such as in stem cell lineage tracking.
- Subjects :
- electroporation
separation
Cell division
Cell Survival
Cells
Microfluidics
Cell
Biomedical Engineering
Bioengineering
Nanotechnology
Biology
Hydrodynamic trapping
Biochemistry
stem-cells
Trap (computing)
medicine
Animals
Humans
Computer Simulation
dielectrophoresis
Electroporation
General Chemistry
Dielectrophoresis
medicine.anatomical_structure
manipulation
Stem cell
Biological system
Subjects
Details
- ISSN :
- 14730189 and 14730197
- Volume :
- 10
- Database :
- OpenAIRE
- Journal :
- Lab on a Chip
- Accession number :
- edsair.doi.dedup.....f1ee887953781978ea49af04efd24742
- Full Text :
- https://doi.org/10.1039/b918055a