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Deformability-based cell classification and enrichment using inertial microfluidics

Lab on a Chip · 2011 · Vol. 11(5) · pp. 912–912
Soojung HurNicole K. Henderson-MacLennanEdward R.B. McCabeDino Di Carlo

Abstract

The ability to detect and isolate rare target cells from heterogeneous samples is in high demand in cell biology research, immunology, tissue engineering and medicine. Techniques allowing label-free cell enrichment or detection are especially important to reduce the complexity and costs towards clinical applications. Single-cell deformability has recently been recognized as a unique label-free biomarker for cell phenotype with implications for assessment of cancer invasiveness. Using a unique combination of fluid dynamic effects in a microfluidic system, we demonstrate high-throughput continuous label-free cell classification and enrichment based on cell size and deformability. The system takes advantage of a balance between deformability-induced and inertial lift forces as cells travel in a microchannel flow. Particles and droplets with varied elasticity and viscosity were found to have separate lateral dynamic equilibrium positions due to this balance of forces. We applied this system to successfully classify various cell types using cell size and deformability as distinguishing markers. Furthermore, using differences in dynamic equilibrium positions, we adapted the system to conduct passive, label-free and continuous cell enrichment based on these markers, enabling off-chip sample collection without significant gene expression changes. The presented method has practical potential for high-throughput deformability measurements and cost-effective cell separation to obtain viable target cells of interest in cancer research, immunology, and regenerative medicine.

Microfluidic and Bio-sensing TechnologiesMicrofluidic and Capillary Electrophoresis Applications3D Printing in Biomedical ResearchMicrofluidicsCellRegenerative medicineMicrochannelNanotechnologyThroughputBiological systemCell typeBiomarker discoveryComputer science

MeSH terms

Biomechanical PhenomenaCell SeparationCell SurvivalElasticityHumansNeoplastic Cells, CirculatingViscosityGene Expression ProfilingCell Line, TumorMicrofluidic Analytical TechniquesMechanical Phenomena

Funding

  • National Science Foundation
  • National Institutes of Health
  • Center for AIDS Research, University of Washington
  • Jonsson Comprehensive Cancer Center
  • UCLA AIDS Institute
Citations
564
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Nature Nanotechnology · 2007 · 1,883 citations
Label-free cell separation and sorting in microfluidic systems
Analytical and Bioanalytical Chemistry · 2010 · 917 citations
Micropipette aspiration of living cells
Journal of Biomechanics · 2000 · 1,386 citations
Inertial microfluidics
Lab on a Chip · 2009 · 1,581 citations
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