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Human Primary Trophoblast Cell Culture Model to Study the Protective Effects of Melatonin Against Hypoxia/reoxygenation-induced Disruption
Published on: July 30, 2016
Melatonin action in neonatal gonadotrophs
A Balík1, K Kretschmannová, P Mazna
1Department of Cellular and Molecular Neuroendocrinology, Institute of Physiology, Academy of Sciences of the Czech Republic, Prague, Czech Republic.
Abstract:
Neonatal pituitary cells express MT1 and MT2 subtype of melatonin receptors that are coupled to pertussis toxin-sensitive G proteins. Their activation by melatonin leads to a decrease in cAMP production and activity of protein kinase A, and attenuation of gonadotropin-releasing hormone (GnRH)-induced gonadotropin secretion. Single cell calcium and electrophysiological recordings have revealed that a reduction in gonadotropin release results from melatonin-induced inhibition of GnRH-stimulated calcium signaling. Melatonin inhibits both calcium influx through voltage-dependent calcium channels and calcium mobilization from intracellular stores. Inhibition of calcium influx, probably in a cAMP/protein kinase C-dependent manner, and the accompanying calcium-induced calcium release from ryanodine-sensitive intracellular pools by melatonin results in a delay of GnRH-induced calcium signaling. Melatonin-induced attenuation of GnRH-induced and inositol (1,4,5)-trisphosphate-mediated calcium release from intracellular pools attenuates the amplitude of calcium signal. The potent inhibition of GnRH-induced calcium signaling and gonadotropin secretion by melatonin provides an effective mechanism to protect premature initiation of pubertal changes that are dependent on plasma gonadotropin levels. During the development, such tonic inhibitory effects of melatonin on GnRH action gradually decline due to a decrease in expression of functional melatonin receptors. In adult animals, melatonin does not have obvious direct effects on pituitary functions, whereas the connections between melatonin release and hypothalamic functions, including GnRH release, are preserved, and are critically important in synchronizing the external photoperiods and reproductive functions through still not well characterized mechanisms.
Insights
Melatonin inhibits gonadotropin secretion in newborns by blocking calcium signaling in pituitary cells. This protective effect diminishes with development, allowing for normal pubertal timing.
Area of Science:
- Endocrinology
- Neuroscience
- Reproductive Biology
Background:
- Neonatal pituitary cells possess MT1 and MT2 melatonin receptors.
- Melatonin receptor activation inhibits cAMP production and protein kinase A activity.
- This leads to attenuated gonadotropin-releasing hormone (GnRH)-induced gonadotropin secretion.
Purpose of the Study:
- To investigate the mechanism by which melatonin inhibits GnRH-induced gonadotropin secretion in neonatal pituitary cells.
- To elucidate the role of calcium signaling in melatonin's inhibitory effects.
- To understand the developmental changes in melatonin's action on the reproductive axis.
Main Methods:
- Single-cell calcium imaging and electrophysiological recordings were employed.
- The effects of melatonin on GnRH-stimulated calcium influx and intracellular calcium release were analyzed.
- Changes in receptor expression during development were considered.
Main Results:
- Melatonin inhibits GnRH-stimulated calcium signaling by reducing calcium influx and intracellular calcium mobilization.
- This inhibition involves voltage-dependent calcium channels and ryanodine-sensitive intracellular pools.
- Melatonin's potent inhibition of calcium signaling and gonadotropin secretion protects against premature puberty.
Conclusions:
- Melatonin acts via MT1/MT2 receptors to inhibit pituitary gonadotropin secretion in neonates by disrupting calcium signaling.
- This inhibitory effect wanes during development due to decreased receptor expression.
- Melatonin's role shifts to synchronizing reproductive functions with photoperiods in adults via hypothalamic pathways.
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