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Calcium currents in GH3 cultured pituitary cells under whole-cell voltage-clamp: inhibition by voltage-dependent
Abstract:
To isolate inward Ca2+ currents in GH3 rat pituitary cells, an inward Na+ current as well as two outward K+ currents, a transient voltage-dependent current (IKV) and a slowly rising Ca2+-activated current (IKCa), must be suppressed. Blockage of these outward currents, usually achieved by replacement of intracellular K+ with Cs+, reveals sustained inward currents. Selective blockage of either K+ current can be accomplished in the presence of intracellular K+ by use of quaternary ammonium ions. When IKCa and Na+ currents are blocked, the net current elicited by stepping the membrane potential (Vm) from -60 to 0 mV is inward first, becomes outward and peaks in 10-30 msec, and finally becomes inward again. Under this condition, in which both IKV and Ca2+ currents should be present throughout the duration of the voltage step, the Ca2+ current was not detected at the time of peak outward current. That is, plots of peak outward current vs. Vm are monotonic and are not modified by nisoldipine or low external Ca2+ as would be expected if Ca2+ currents were present. However, similar plots at times other than at peak current are not monotonic and are altered by nisoldipine or low Ca2+ (i.e., inward currents decrease and plots become monotonic). When K+ channels are first inactivated by holding Vm at -30 mV, a sustained Ca2+ current is always observed upon stepping Vm to 0 mV. Furthermore, substitution of Ba2+ for Ca2+ causes blockage of IKV and inhibition of this current results in inward Ba2+ currents with square wave kinetics. These data indicate that the Ca2+ current is completely inhibited at peak outward IKV and that Ca2+ conductance is progressively disinhibited as the transient K+ current declines due to channel inactivation. This suggests that in GH3 cells Ca2+ channels are regulated by IKV.
Insights
Calcium (Ca2+) currents in GH3 cells are inhibited by the transient voltage-dependent potassium current (IKV). Ca2+ conductance is regulated by IKV, suggesting a novel interaction in pituitary cells.
Area of Science:
- Neuroscience
- Cell Biology
- Electrophysiology
Background:
- Isolating specific ion currents in excitable cells requires blocking other interfering currents.
- GH3 rat pituitary cells exhibit complex electrical activity involving sodium (Na+), potassium (K+), and calcium (Ca2+) currents.
Purpose of the Study:
- To investigate the regulation of inward calcium (Ca2+) currents in GH3 cells.
- To determine the interaction between Ca2+ currents and other voltage-dependent currents.
Main Methods:
- Utilized voltage-clamp electrophysiology in GH3 cells.
- Employed selective blockade of Na+ and K+ currents (transient voltage-dependent IKV, Ca2+-activated IKCa) using specific ions and blockers.
- Manipulated membrane potential (Vm) and external ion concentrations (Ca2+, Ba2+).
Main Results:
- Ca2+ current was undetectable at the peak of the transient outward K+ current (IKV).
- Ca2+ currents were observed when IKV was inactivated or blocked.
- Substitution of Ba2+ for Ca2+ revealed inward currents with square wave kinetics, indicating IKV blockage.
Conclusions:
- Ca2+ channels in GH3 cells are actively inhibited by the transient voltage-dependent K+ current (IKV).
- Ca2+ conductance is progressively unblocked as IKV inactivates.
- This study reveals a regulatory mechanism where IKV modulates Ca2+ channel activity in pituitary cells.