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Isolation and Activation of Murine Lymphocytes
Published on: October 30, 2016
Lymphocyte fractionation using immunomagnetic colloid and a dipole magnet flow cell sorter
L R Moore1, M Zborowski, L Sun
1Department of Biomedical Engineering, Cleveland Clinic Foundation, OH 44195-5254, USA. moore@bme.ri.ccf.org
Insights
A novel dipole magnet flow sorter (DMFS) effectively separates T lymphocytes into fractions based on cell surface marker expression. This technology allows for precise cell sorting, aiding biological and medical research.
Area of Science:
- Cell Biology
- Biotechnology
- Immunology
Background:
- Cell function is closely linked to surface marker expression, necessitating methods for separating homogeneous cell populations.
- Existing cell separation techniques may not be optimal for all cell types, especially fragile ones.
Purpose of the Study:
- To develop and validate a novel cell sorting technology for separating cells based on surface marker expression.
- To demonstrate the efficacy of the dipole magnet flow sorter (DMFS) for T lymphocyte subpopulation separation.
Main Methods:
- Development of a dipole magnet flow sorter (DMFS) utilizing magnetic forces to separate cells in a fluid stream.
- Targeting T lymphocytes with immunomagnetic colloid and analyzing fractions via flow cytometry.
- Utilizing antibody-fluorescein isothiocyanate (FITC) conjugates and anti-FITC-magnetic colloid for cell labeling.
Main Results:
- The DMFS successfully separated CD4 and CD8 T lymphocytes into fractions with distinct marker expression levels.
- A three-fold increase in marker number was observed in the highest fluorescence fraction for CD4 cells compared to the lowest.
- A four-fold increase in marker number was observed for CD8 cells.
- Separation of monocytes and T helper lymphocytes based on CD4 marker expression was achieved.
Conclusions:
- The DMFS is a novel and effective tool for separating cells based on surface marker expression.
- The technology offers a gentle yet precise method suitable for sorting fragile cells in suspension.
- Applicable to any suspension cells with a suitable antibody, advancing cell-based research and diagnostics.
Abstract:
The relationship between cell function and surface marker expression is a subject of active investigation in biology and medicine. These investigations require separating cells of a homogeneous subset into multiple fractions of varying marker expression. We have developed a novel cell sorter, the dipole magnet flow sorter (DMFS), which separates selected T lymphocyte subpopulations, targeted by immunomagnetic colloid, into multiple fractions according to cell surface marker expression, as determined by flow cytometry. A narrow stream of cells is introduced into a sheath of carrier fluid in a rectangular channel while subjected to a perpendicular magnetic force. The special design of the pole pieces ensures a constant magnetic force acting on the magnetically labeled cells in the separation area. Cells are spread across the flow in relation to their magnetophoretic mobility. Separation is achieved by control of the positions of the effluent stream boundaries, which separate fluid volumes with cells of different magnetophoretic mobility. CD4 and CD8 T lymphocytes labeled with primary antibody-fluorescein isothiocyanate (FITC) conjugate and anti-FITC-magnetic colloid are the chosen cell systems. Flow cytometry analysis shows that, for CD4 cells, a three-fold increase in total marker number per cell is observed when comparing the highest to the lowest fluorescence fractions. Similarly, a four-fold increase in total marker number is observed for CD8 cells. We also observed the separation of two dissimilar cell types that differed in expression of the CD4 marker, monocytes and T helper lymphocytes. We believe that this type of separation is applicable to any cells in suspension for which a suitable antibody exists and, due to the comparatively gentle nature of the process, is particularly suitable for the sorting of fragile cells.

