Title :
High-Throughput Immunomagnetic Cell Detection Using a Microaperture Chip System
Author :
Chun-Li Chang ; Jalal, Shadia I. ; Wanfeng Huang ; Mahmood, Arif ; Matei, Daniela E. ; Savran, Cagri A.
Author_Institution :
Birck Nanotechnol. Center, Purdue Univ., West Lafayette, IN, USA
Abstract :
We report a microchip system based on a combination of immunomagnetic separation, microfluidics, and size-based filtration for high-throughput detection of rare cells. In this system, target cells bind to magnetic beads in vitro and flow parallel to a microchip with flow rates of milliliters/minute. A magnetic field draws the bead-bound cells toward the microchip, which contains apertures that allow passage of unbound beads while trapping the target cells. The cells captured on the chip can be investigated clearly under a microscope and released from the chip for further analysis. We first characterize the system by detecting cancer cell lines (MCF-7 and A549) in culture media. We then demonstrate detection of 100 MCF-7 cells spiked in 7.5 mL of human blood to simulate detection of circulating tumor cells present in cancer patient blood samples. On average, 85% of the spiked cells were detected. We expect this system to be highly useful in a wide variety of clinical as well as other applications that seek rare cells.
Keywords :
bioMEMS; biomagnetism; biomechanics; biomedical equipment; biomedical optical imaging; blood; cancer; cellular biophysics; lab-on-a-chip; magnetic separation; microfiltration; microfluidics; optical microscopy; tumours; A549 cell line; MCF-7 cell line; bead-bound cells; cancer cell line detection; cancer patient blood samples; cell culture media; cell release; cells capture; circulating tumor cell detection; clinical applications; high-throughput immunomagnetic cell detection; high-throughput rare cell detection; immunomagnetic separation; in vitro magnetic beads; magnetic field effect; microaperture chip system; microchip flow rates; microchip system characterization; microfluidics; microscope; size-based filtration; spiked MCF-7 cell detection; target cell binding; target cell trapping; unbound bead passage; Blood; Cancer; Fluids; Fluorescence; Magnetic separation; Microscopy; CTC detection; immunomagnetic separation; microfluidics; rare cell detection; size-based filtration; tumor cells;
Journal_Title :
Sensors Journal, IEEE
DOI :
10.1109/JSEN.2014.2321167