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Updated: Nov 24, 2025

Separation of Immune Cell Subpopulations in Peripheral Blood Samples from Children with Infectious Mononucleosis
Published on: September 7, 2022
Immunomagnetic separation is a suitable method for electrophysiology and ion channel pharmacology studies on T cells
Gabor Tajti1, Tibor Gabor Szanto1, Agota Csoti1
1Department of Biophysics and Cell Biology, Faculty of Medicine, University of Debrecen , Debrecen, Hungary.
Insights
Magnetic-activated cell sorting (MACS) is suitable for studying ion channels in T-lymphocytes. MACS bead presence did not affect Kv1.3 channel properties, confirming its utility for immune cell subset separation in electrophysiology.
Area of Science:
- Immunology
- Cell Biology
- Biophysics
Background:
- Ion channels are crucial for immune cell function, necessitating subtype-specific studies.
- Accurate cell separation is vital for techniques like single-cell electrophysiology.
- The impact of magnetic-activated cell sorting (MACS) beads on ion channel properties remains uninvestigated.
Purpose of the Study:
- To evaluate the effect of MACS-related compounds on the biophysical and pharmacological properties of the Kv1.3 potassium channel in CD4+ T-cells.
- To assess the suitability of MACS for immune cell separation in ion channel research.
Main Methods:
- Whole-cell patch-clamp electrophysiology was performed on activated CD4+ T-cells separated using MACS (positive selection).
- Kv1.3 channel gating, activation/inactivation kinetics, and block by TEA+ and charybdotoxin (ChTx) were analyzed.
- Experiments included bead-bound, bead-free, and label-free configurations, with FACS and negative selection as controls.
Main Results:
- MACS bead presence did not alter membrane capacitance or Kv1.3 channel biophysical parameters.
- Subtle differences in Kv1.3 activation kinetics were observed, unrelated to MACS compounds.
- Neither equilibrium nor kinetic block of Kv1.3 by TEA+ or ChTx was affected by MACS beads.
Conclusions:
- MACS is a viable method for separating immune cells, such as T-lymphocytes, for ion channel studies.
- The presence of MACS beads does not interfere with the electrophysiological properties of the Kv1.3 channel.
- MACS offers a suitable alternative to FACS for preparing non-excitable immune cells for functional ion channel analysis.
Abstract:
Ion channels play pivotal role in the physiological and pathological function of immune cells. As immune cells represent a functionally diverse population, subtype-specific functional studies, such as single-cell electrophysiology require proper subset identification and separation. Magnetic-activated cell sorting (MACS) techniques provide an alternative to fluorescence-activated cell sorting (FACS), however, the potential impact of MACS-related beads on the biophysical and pharmacological properties of the ion channels were not studied yet. We studied the aforementioned properties of the voltage-gated Kv1.3 K+ channel in activated CD4+ T-cells as well as the membrane capacitance using whole-cell patch-clamp following immunomagnetic positive separation, using the REAlease® kit. This kit allows three experimental configurations: bead-bound configuration, bead-free configuration following the removal of magnetic beads, and the label-free configuration following removal of CD4 recognizing antibody fragments. As controls, we used FACS separation as well as immunomagnetic negative selection. The membrane capacitance and of the biophysical parameters of Kv1.3 gating, voltage-dependence of steady-state activation and inactivation kinetics of the current were not affected by the presence of MACS-related compounds on the cell surface. We found subtle differences in the activation kinetics of the Kv1.3 current that could not be explained by the presence of MACS-related compounds. Neither the equilibrium block of Kv1.3 by TEA+ or charybdotoxin (ChTx) nor the kinetics of ChTx block are affected by the presence of the magnetics beads on the cell surface. Based on our results MACS is a suitable method to separate cells for studying ion channels in non-excitable cells, such as T-lymphocytes.

