DocumentCode
3003111
Title
Single cell trapping in microfluidic channel via hydrodynamic manipulation
Author
Khalili, Amelia Ahmad ; Basri, Mohd Ariffanan Mohd ; Ahmad, Mohd Ridzuan
Author_Institution
Dept. of Control & Mechatron. Eng., Univ. Teknol. Malaysia, Skudai, Malaysia
fYear
2013
fDate
Nov. 29 2013-Dec. 1 2013
Firstpage
596
Lastpage
601
Abstract
Microfluidic devices are important for the single cell analysis such as cell mechanical and electrical characterization. Single cell characterization could be related to many significant applications including early disease diagnosis. However to perform the single cell manipulation, firstly a single cell have to be isolated and a platform for the cell manipulation have to be provided. One of the methods to trap a single cell is by using hydrodynamic trapping in the microfluidic channel. This study provides a finite element model for single cell trapping for a yeast cell model. The objectives of the simulations are to obtain the appropriate channels´ geometry and optimized ratio of the fluid´s inlet and suction flow rate to trap a single yeast cell. Trap channel was designed to trap a 5 μm yeast cell with a suction hole placed in the end of the trap channel. Design geometry and ratio of fluid flow rates referring to the hydrodynamic concept were studied for the cell trapping model. The analysis was carried out using numerical solutions from the finite element ABAQUS-FEA software. Using the cell trapping model, a single yeast cell able to be trapped into the trap channel with optimized channel´s suction hole´s geometry and appropriate fluid´s inlet and suction flow rate ratio.
Keywords
bioelectric potentials; biomechanics; cellular biophysics; electrohydrodynamics; finite element analysis; microchannel flow; microorganisms; cell electrical characterization; cell mechanical characterization; channel geometry; design geometry; disease diagnosis; finite element ABAQUS-FEA software; finite element model; fluid inlet flow rate; hydrodynamic manipulation; hydrodynamic trapping; microfluidic channel; microfluidic devices; numerical solutions; optimized ratio; single cell analysis; single cell manipulation; single cell trapping; single yeast cell model; suction flow rate; Charge carrier processes; Finite element analysis; Fluids; Hydrodynamics; Mathematical model; Microfluidics; Resistance; cell trapping; finite element; microfluidic; single cell;
fLanguage
English
Publisher
ieee
Conference_Titel
Control System, Computing and Engineering (ICCSCE), 2013 IEEE International Conference on
Conference_Location
Mindeb
Print_ISBN
978-1-4799-1506-4
Type
conf
DOI
10.1109/ICCSCE.2013.6720035
Filename
6720035
Link To Document