DocumentCode
80586
Title
Electrokinetic Analysis of Cell Translocation in Low-Cost Microfluidic Cytometry for Tumor Cell Detection and Enumeration
Author
Jinhong Guo ; Tze Sian Pui ; Yong-Ling Ban ; Rahman, Abdur R. A. ; Yuejun Kang
Author_Institution
Sch. of Chem. & Biomed. Eng., Nanyang Technol. Univ., Singapore, Singapore
Volume
60
Issue
12
fYear
2013
fDate
Dec. 2013
Firstpage
3269
Lastpage
3275
Abstract
Conventional Coulter counters have been introduced as an important tool in biological cell assays since several decades ago. Recently, the emerging portable Coulter counter has demonstrated its merits in point of care diagnostics, such as on chip detection and enumeration of circulating tumor cells (CTC). The working principle is based on the cell translocation time and amplitude of electrical current change that the cell induces. In this paper, we provide an analysis of a Coulter counter that evaluates the hydrodynamic and electrokinetic properties of polystyrene microparticles in a microfluidic channel. The hydrodynamic force and electrokinetic force are concurrently analyzed to determine the translocation time and the electrical current pulses induced by the particles. Finally, we characterize the chip performance for CTC detection. The experimental results validate the numerical analysis of the microfluidic chip. The presented model can provide critical insight and guidance for developing micro-Coulter counter for point of care prognosis.
Keywords
cellular biophysics; electrokinetic effects; microfluidics; patient diagnosis; tumours; CTC; biological cell assays; cell translocation time; chip detection; circulating tumor cells; conventional Coulter counters; electrical current change; electrokinetic analysis; electrokinetic force; electrokinetic properties; hydrodynamic force; hydrodynamic properties; low-cost microfluidic cytometry; microCoulter counter; microfluidic channel; microfluidic chip; numerical analysis; point of care diagnostics; polystyrene microparticles; portable Coulter counter; tumor cell detection; tumor cell enumeration; Apertures; Fluids; Force; Hydrodynamics; Microfluidics; Sensors; Tumors; Circulating tumor cell; Coulter counter; electrokinetic; hydrodynamic; point of care;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/TBME.2013.2278014
Filename
6578126
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