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Voltage-activated calcium channels that must be phosphorylated to respond to membrane depolarization
Abstract:
Two classes of calcium channels were activated by membrane depolarization in cell-free membrane patches from GH3 cells, an electrically excitable cell line derived from a mammalian pituitary tumor. One class had a conductance of approximately 10 pS in 90 mM barium, had a threshold of activation near -40 mV, and was inactivated rapidly at holding potentials more positive than -80 mV. The other class, with a conductance of approximately 23 pS and a threshold nearer -20 mV, did not inactivate in barium but stopped responding to depolarization altogether when the cytoplasmic side of the patch was exposed to a standard physiological saline solution. Buffering the concentration of calcium ions to less than 10 nM on the cytoplasmic side did not prevent this loss of activity. However, activity was restored and maintained for the duration of the patch when the catalytic subunit of cAMP-dependent protein kinase was added with MgATP to the cytoplasmic side of the membrane. Cell-free patch formation in the presence of the dihydropyridine, BAY K 8644, also delayed the loss of activity, but unlike the catalytic subunit plus ATP, BAY K 8644 alone did not restore activity when it was added after the channels no longer responded to depolarization. Evidently the dihydropyridine-sensitive class of voltage-activated calcium channels must be phosphorylated in order to open when the membrane is depolarized. That hypothesis provides a simple framework for understanding the modulation of calcium channel gating by neurotransmitters, calcium ions, and dihydropyridines.
Insights
Phosphorylation by cAMP-dependent protein kinase is essential for the function of dihydropyridine-sensitive calcium channels in GH3 cells. This process is crucial for regulating channel activity upon membrane depolarization.
Area of Science:
- Cellular Electrophysiology
- Molecular Pharmacology
Background:
- GH3 cells, a pituitary tumor cell line, exhibit electrical excitability.
- Voltage-gated calcium channels play a critical role in cellular signaling.
Purpose of the Study:
- To investigate the properties and regulation of calcium channels in GH3 cells.
- To determine the role of phosphorylation in the function of dihydropyridine-sensitive calcium channels.
Main Methods:
- Cell-free patch-clamp electrophysiology on GH3 cells.
- Activation and inactivation properties of calcium channels were analyzed.
- Effects of cAMP-dependent protein kinase and BAY K 8644 on channel activity were assessed.
Main Results:
- Two classes of calcium channels were identified with distinct conductances and activation thresholds.
- A dihydropyridine-sensitive calcium channel class lost activity upon exposure to physiological saline, which was restored by cAMP-dependent protein kinase and MgATP.
- BAY K 8644 alone did not restore activity, suggesting a requirement for phosphorylation.
Conclusions:
- Dihydropyridine-sensitive voltage-activated calcium channels require phosphorylation for proper gating.
- Phosphorylation is a key mechanism modulating calcium channel activity, influenced by factors like neurotransmitters and dihydropyridines.