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Kisspeptin-10 Facilitates a Plasma Membrane-Driven Calcium Oscillator in Gonadotropin-Releasing Hormone-1 Neurons
Author(s) -
Stéphanie Constantin,
Claudia S. Caligioni,
Stanko S. Stojilković,
Susan Wray
Publication year - 2008
Publication title -
endocrinology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.674
H-Index - 257
eISSN - 1945-7170
pISSN - 0013-7227
DOI - 10.1210/en.2008-0979
Subject(s) - medicine , endocrinology , kisspeptin , gonadotropin releasing hormone , phospholipase c , calcium in biology , calcium , voltage dependent calcium channel , inositol trisphosphate receptor , biology , receptor , plasma membrane ca2+ atpase , t type calcium channel , chemistry , inositol , signal transduction , microbiology and biotechnology , luteinizing hormone , hormone , biochemistry , enzyme , atpase
Kisspeptins, the natural ligands of the G-protein-coupled receptor (GPR)-54, are the most potent stimulators of GnRH-1 secretion and as such are critical to reproductive function. However, the mechanism by which kisspeptins enhance calcium-regulated neuropeptide secretion is not clear. In the present study, we used GnRH-1 neurons maintained in mice nasal explants to examine the expression and signaling of GPR54. Under basal conditions, GnRH-1 cells exhibited spontaneous baseline oscillations in intracellular calcium concentration ([Ca2+]i), which were critically dependent on the operation of voltage-gated, tetrodotoxin (TTX)-sensitive sodium channels and were not coupled to calcium release from intracellular pools. Activation of native GPR54 by kisspeptin-10 initiated [Ca2+]i oscillations in quiescent GnRH-1 cells, increased the frequency of calcium spiking in oscillating cells that led to summation of individual spikes into plateau-bursting type of calcium signals in a subset of active cells. These changes predominantly reflected the stimulatory effect of GPR54 activation on the plasma membrane oscillator activity via coupling of this receptor to phospholipase C signaling pathways. Both components of this pathway, inositol 1,3,4-trisphosphate and protein kinase C, contributed to the receptor-mediated modulation of baseline [Ca2+]i oscillations. TTX and 2-aminoethyl diphenylborinate together abolished agonist-induced elevation in [Ca2+]i in almost all cells, whereas flufenamic acid was less effective. Together these results indicate that a plasma membrane calcium oscillator is spontaneously operative in the majority of prenatal GnRH-1 neurons and is facilitated by kisspeptin-10 through phosphatidyl inositol diphosphate hydrolysis and depolarization of neurons by activating TTX-sensitive sodium channels and nonselective cationic channels. GnRH-1 neurons exhibit a spontaneously active calcium oscillator, dependent on tetrodotoxin-sensitive sodium conductance. Kisspeptin-10/GPR54, via phosphatidyl inositol diphosphate 2 hydrolysis, utilizes these channels and non-selective cationic channels.

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