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Automated single cell sorting and deposition in submicroliter drops

Salánki, Rita Zsanett and Gerecsei, Tamás and Orgován, Norbert and Sándor, Noémi and Péter, Beatrix and Bajtay, Zsuzsanna and Erdei, Anna and Horváth, Róbert and Szabó, Bálint (2014) Automated single cell sorting and deposition in submicroliter drops. APPLIED PHYSICS LETTERS, 105 (8). 083703. ISSN 0003-6951

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Abstract

Automated manipulation and sorting of single cells are challenging, when intact cells are needed for further investigations, e.g., RNA or DNA sequencing. We applied a computer controlled micropipette on a microscope admitting 80 PCR (Polymerase Chain Reaction) tubes to be filled with single cells in a cycle. Due to the Laplace pressure, fluid starts to flow out from the micropipette only above a critical pressure preventing the precise control of drop volume in the submicroliter range. We found an anomalous pressure additive to the Laplace pressure that we attribute to the evaporation of the drop. We have overcome the problem of the critical dropping pressure with sequentially operated fast fluidic valves timed with a millisecond precision. Minimum drop volume was 0.4-0.7 μl with a sorting speed of 15-20 s per cell. After picking NE-4C neuroectodermal mouse stem cells and human primary monocytes from a standard plastic Petri dish we could gently deposit single cells inside tiny drops. 94 ± 3% and 54 ± 7% of the deposited drops contained single cells for NE-4C and monocytes, respectively. 7.5 ± 4% of the drops contained multiple cells in case of monocytes. Remaining drops were empty. Number of cells deposited in a drop could be documented by imaging the Petri dish before and after sorting. We tuned the adhesion force of cells to make the manipulation successful without the application of microstructures for trapping cells on the surface. We propose that our straightforward and flexible setup opens an avenue for single cell isolation, critically needed for the rapidly growing field of single cell biology. © 2014 AIP Publishing LLC.

Item Type: Article
Uncontrolled Keywords: Molecular Biology; Precise control; Multiple cells; Micro-pipette; Laplace pressure; Fluidic valves; DNA sequencing; Critical pressures; Adhesion forces; Stem Cells; polymerase chain reaction; Laplace transforms; Drops; DNA sequences; Cytology; Body fluids
Subjects: Q Science / természettudomány > QC Physics / fizika
SWORD Depositor: MTMT SWORD
Depositing User: MTMT SWORD
Date Deposited: 11 Feb 2015 12:26
Last Modified: 11 Feb 2015 12:26
URI: http://real.mtak.hu/id/eprint/21559

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