Molecular mechanisms of pituitary endocrine cell calcium handling
1Section on Cellular Signaling, Program in Developmental Neuroscience, NICHD, National Institutes of Health, Bethesda, MD 20892-4510, United States. stankos@helix.nih.gov
Abstract:
Endocrine pituitary cells express numerous voltage-gated Na(+), Ca(2+), K(+), and Cl(-) channels and several ligand-gated channels, and they fire action potentials spontaneously. Depending on the cell type, this electrical activity can generate localized or global Ca(2+) signals, the latter reaching the threshold for stimulus-secretion coupling. These cells also express numerous G-protein-coupled receptors, which can stimulate or silence electrical activity and Ca(2+) influx through voltage-gated Ca(2+) channels and hormone release. Receptors positively coupled to the adenylyl cyclase signaling pathway stimulate electrical activity with cAMP, which activates hyperpolarization-activated cyclic nucleotide-regulated channels directly, or by cAMP-dependent kinase-mediated phosphorylation of K(+), Na(+), Ca(2+), and/or non-selective cation-conducting channels. Receptors that are negatively coupled to adenylyl cyclase signaling pathways inhibit spontaneous electrical activity and accompanied Ca(2+) transients predominantly through the activation of inwardly rectifying K(+) channels and the inhibition of voltage-gated Ca(2+) channels. The Ca(2+)-mobilizing receptors activate inositol trisphosphate-gated Ca(2+) channels in the endoplasmic reticulum, leading to Ca(2+) release in an oscillatory or non-oscillatory manner, depending on the cell type. This Ca(2+) release causes a cell type-specific modulation of electrical activity and intracellular Ca(2+) handling.
Insights
Pituitary cells use electrical activity and ion channels to control hormone release. G-protein-coupled receptors modulate this activity, influencing calcium signals and secretion.
Area of Science:
- Endocrinology
- Neuroscience
- Cell Physiology
Background:
- Pituitary cells exhibit spontaneous electrical activity involving various ion channels.
- This electrical activity generates calcium signals crucial for stimulus-secretion coupling and hormone release.
Purpose of the Study:
- To elucidate the role of ion channels and G-protein-coupled receptors in pituitary cell electrical activity and hormone secretion.
- To understand how different signaling pathways modulate intracellular calcium dynamics and cell function.
Main Methods:
- Analysis of voltage-gated and ligand-gated ion channel expression.
- Investigation of G-protein-coupled receptor signaling pathways.
- Measurement of electrical activity and intracellular calcium transients.
Main Results:
- Pituitary cells possess diverse ion channels regulating electrical excitability.
- G-protein-coupled receptors modulate electrical activity and calcium influx via adenylyl cyclase and calcium-mobilizing pathways.
- Receptor signaling influences ion channel activity, leading to cell-type-specific electrical and calcium responses.
Conclusions:
- Electrical activity and ion channel function are central to pituitary hormone secretion.
- G-protein-coupled receptors provide sophisticated control over pituitary cell excitability and calcium signaling.
- Understanding these mechanisms is key to comprehending pituitary endocrine regulation.
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