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Immunomagnetic Isolation of the Vascular Wall-Resident CD34+ Stem Cells from Mice
Published on: December 22, 2023
Microfluidic magnetophoretic separations of immunomagnetically labeled rare mammalian cells
Thomas P Forbes1, Samuel P Forry
1National Institute of Standards and Technology, Biochemical Science Division, Gaithersburg, MD, USA.
Insights
This study introduces a microfluidic system using angled magnets for cell separation via immunomagnetic isolation and magnetophoresis. A validated numerical model aids in designing systems for efficient rare cell enrichment.
Area of Science:
- Biotechnology
- Microfluidics
- Biophysics
Background:
- Immunomagnetic isolation and magnetophoresis are key for rare cell separation.
- Microfluidic systems offer precise control for these techniques.
Purpose of the Study:
- To develop and characterize a microfluidic system for lateral magnetophoresis.
- To create a numerical model for predicting magnetophoretic displacement and optimizing device design.
Main Methods:
- Development of a microfluidic device with an angled permanent magnet.
- Creation and validation of a numerical model based on transport processes.
- Experimental validation using superparamagnetic beads and labeled MCF-7 cells.
Main Results:
- Demonstrated lateral magnetophoresis of beads and labeled cells.
- Validated numerical model predicts magnetophoretic displacement.
- Identified transition between hydrodynamic and magnetic regimes using a dimensionless parameter.
Conclusions:
- The developed numerical model and theoretical framework enable efficient design of microfluidic magnetophoresis systems.
- The dimensionless magnetophoresis parameter is crucial for understanding and optimizing cell separation.
- This approach facilitates the tailored design of systems for specific biological applications and cell types.
Abstract:
Immunomagnetic isolation and magnetophoresis in microfluidics have emerged as viable techniques for the separation, fractionation, and enrichment of rare cells. Here we present the development and characterization of a microfluidic system that incorporates an angled permanent magnet for the lateral magnetophoresis of superparamagnetic beads and labeled cell-bead complexes. A numerical model, based on the relevant transport processes, is developed as a design tool for the demonstration and prediction of magnetophoretic displacement. We employ a dimensionless magnetophoresis parameter to efficiently investigate the design space, gain insight into the physics of the system, and compare results across the vast spectrum of magnetophoretic microfluidic systems. The numerical model and theoretical analysis are experimentally validated by the lateral magnetophoretic deflection of superparamagnetic beads and magnetically labeled breast adenocarcinoma MCF-7 cells in a microfluidic device that incorporates a permanent magnet angled relative to the flow. Through the dimensionless magnetophoresis parameter, the transition between regimes of magnetophoretic action, from hydrodynamically dominated (magnetic deflection) to magnetically dominated (magnetic capture), is experimentally identified. This powerful tool and theoretical framework enables efficient device and experiment design of biologically relevant systems, taking into account their inherent variability and labeling distributions. This analysis identifies the necessary beads, magnet configuration (orientation), magnet type (permanent, ferromagnetic, electromagnet), flow rate, channel geometry, and buffer to achieve the desired level of magnetophoretic deflection or capture.
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