Related Experiment Video
Updated: Aug 8, 2026

Whole-Cell Recording of Calcium Release-Activated Calcium (CRAC) Currents in Human T Lymphocytes
Published on: December 21, 2010
Mitogen-activated Ca++ channels in human B lymphocytes
1Department of Medicine, Hahnemann University, Philadelphia, Pennsylvania 19102.
Insights
Human B cell activation involves calcium influx through transmembrane potential-sensitive channels. These channels, regulated by inositol trisphosphate (IP3), are crucial for early B cell activation stages.
Area of Science:
- Immunology
- Cell Biology
- Biophysics
Background:
- Human B cell activation is a complex process involving changes in intracellular calcium levels.
- Mitogen-induced transmembrane conductances play a role in regulating calcium influx during B cell activation.
Purpose of the Study:
- To investigate mitogen-induced transmembrane conductances in human B cells (Daudi cell line).
- To elucidate the role of calcium influx and transmembrane potential in early B cell activation.
Main Methods:
- Spectrofluorometry to measure intracellular calcium ([Ca++]i) and transmembrane potential.
- Voltage clamp techniques to analyze membrane currents in Daudi cells.
- Activation using anti-mu antibodies and inositol trisphosphate (IP3).
Main Results:
- Anti-mu antibody stimulation caused a biphasic rise in [Ca++]i, with the second phase due to extracellular calcium influx.
- Calcium influx was sensitive to transmembrane potential and inhibited by high extracellular potassium.
- Voltage clamp revealed inward currents activated by anti-mu antibodies and IP3, blocked by lanthanum, indicating Ca++ channel activity.
- IP3 activation suggested a role for IP3 generation in conductance activation.
Conclusions:
- Human B cells possess membrane calcium channels critical for early activation stages.
- Transmembrane potential changes regulate calcium influx during B cell activation.
- These mechanisms collectively control intracellular calcium levels in early B cell activation.
Abstract:
Two complementary experimental methods have been used to examine mitogen-induced transmembrane conductances in human B cells using the Daudi cell line as a model for human B cell activation. Spectrofluorometry was used to investigate mitogen-induced changes in [Ca++]i and transmembrane potential. Activation of human B cells with anti-mu antibodies resulted in a biphasic rise in [Ca++]i, the second phase being mediated by the influx of extracellular Ca++. Ca++ influx was inhibited by high [K+]e, suggesting that this influx was transmembrane potential sensitive. Membrane currents of Daudi cells were investigated using voltage clamp techniques. Before mitogenic stimulation, the cells were electrically quiet. Within several minutes of the addition of anti-mu antibodies to the bath solution, inward currents were observed at negative voltages. Whole-cell currents changed instantly with voltage steps and were transmembrane potential sensitive in that at potentials more positive than -40 mV no currents were detectable. A similar conductance was also activated by the introduction of IP3 into the intracellular solution, suggesting that IP3 generation after surface IgM crosslinking is involved in the activation of this conductance. Both anti-mu and IP3 induced currents were blocked by 1 mM La , which is known to block Ca++ channels. These results strongly support the presence of membrane Ca++ channels in human B cells that function in the early stages of activation. Changes in transmembrane potential appear to be important in regulating Ca++ influx. These mechanisms work in concert to regulate the level of [Ca++]i during the early phases of human B cell activation.
Related Concept Videos
Positive Regulator Molecules
Mitogens and the Cell Cycle
MAPK Signaling Cascades
Calmodulin-dependent Signaling
The Ca2+-CaM complex does not have enzymatic activity by itself. Instead, the complex binds downstream target proteins, including membrane proteins or enzymes,...
T Cell Activation and Clonal Selection
Naive T cells that have not yet encountered an antigen express two primary CD...

