Scientific article
OA Policy
English

Self-assembled magnetic filter for highly efficient immunomagnetic separation

Published inLab on a chip, vol. 11, no. 1, p. 147-151
Publication date2011-01-07
First online date2010-10-14
Abstract

We have developed a compact and inexpensive microfluidic chip, the self-assembled magnetic filter, to efficiently remove magnetically tagged cells from suspension. The self-assembled magnetic filter consists of a microfluidic channel built directly above a self-assembled NdFeB magnet. Micrometre-sized grains of NdFeB assemble to form alternating magnetic dipoles, creating a magnetic field with a very strong magnitude B (from the material) and field gradient ▽B (from the configuration) in the microfluidic channel. The magnetic force imparted on magnetic beads is measured to be comparable to state-of-the-art microfabricated magnets, allowing for efficient separations to be performed in a compact, simple device. The efficiency of the magnetic filter is characterized by sorting non-magnetic (polystyrene) beads from magnetic beads (iron oxide). The filter enriches the population of non-magnetic beads to magnetic beads by a factor of >10(5) with a recovery rate of 90% at 1 mL h(-1). The utility of the magnetic filter is demonstrated with a microfluidic device that sorts tumor cells from leukocytes using negative immunomagnetic selection, and concentrates the tumor cells on an integrated membrane filter for optical detection.

Keywords
  • Animals
  • Cell Line, Tumor
  • Equipment Design
  • Humans
  • Immunomagnetic Separation / economics
  • Immunomagnetic Separation / instrumentation
  • Leukocytes / cytology
  • Mice
  • Microfluidic Analytical Techniques / economics
  • Microfluidic Analytical Techniques / instrumentation
Affiliation entities Not a UNIGE publication
Funding
  • NHLBI NIH HHS [U01 HL080731]
  • NIBIB NIH HHS [2R01-EB004626]
  • NCI NIH HHS [U54 CA119349]
Citation (ISO format)
ISSADORE, David et al. Self-assembled magnetic filter for highly efficient immunomagnetic separation. In: Lab on a chip, 2011, vol. 11, n° 1, p. 147–151. doi: 10.1039/c0lc00149j
Main files (2)
Article (Published version)
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Article (Accepted version)
Identifiers
Additional URL for this publicationhttps://xlink.rsc.org/?DOI=C0LC00149J
Journal ISSN1473-0189
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34downloads

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