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Functional Characterization of Transient Receptor Potential (TRP) Channel C5 in Female Murine Gonadotropes
Andreas Beck1,2, Viktoria Götz1, Sen Qiao1
1Pharmacology and Toxicology, Center for Molecular Signaling (PZMS), Saarland University School of Medicine, Homburg, Germany.
Abstract:
Gonadotrope cells in the anterior pituitary gland secrete gonadotropins regulating gonadal function in mammals. Recent results have implicated transient receptor potential (TRP) cation channels in pituitary physiology; however, if and how TRP channels contribute to gonadotrope function is not known. Here, we report that 14 out of 28 TRP channels encoded in the mouse genome are expressed in murine gonadotropes with highest expression levels found for canonical TRP (TRPC) channel 5 in juvenile females. We show that TRP channel expression in these cells exhibits considerable plasticity and that it depends on the sex and the developmental and hormonal status of the animal. We then combine different genetic strategies including genetic confocal Ca2+ imaging in whole-mount pituitary gland preparations to characterize TRPC5 channel function in gonadotropes from juvenile females. We show that the TRPC5 agonist Englerin A activates a cytosolic Ca2+ signal and a whole-cell current in these cells, which is absent in TRPC5-deficient mice, and demonstrate that TRPC5 forms functional heteromultimers with TRPC1 in gonadotropes. We further show that the Englerin A-activated TRPC5-dependent Ca2+ signal is mediated by Ca2+ influx both via TRPC5 and via l-type voltage-gated Ca2+ channels, activated by the depolarization through TRPC5-mediated cation influx. Finally, we demonstrate that the gonadotropin-releasing hormone (GnRH)-mediated net depolarization is significantly reduced in gonadotropes isolated from TRPC5-deficient mice. In conclusion, our data suggest that TRPC5 contributes to depolarization of the plasma membrane in gonadotropes upon GnRH stimulation and increases the intracellular Ca2+ concentration via its own Ca2+ permeability and via the activation of voltage-gated Ca2+ channels.
Insights
Canonical TRP channel 5 (TRPC5) plays a key role in gonadotrope cell function. TRPC5 influences calcium signaling and membrane depolarization, impacting reproductive hormone regulation.
Area of Science:
- Endocrinology
- Neuroendocrinology
- Molecular Physiology
Background:
- Gonadotrope cells in the anterior pituitary secrete essential reproductive hormones.
- The role of Transient Receptor Potential (TRP) channels in gonadotrope function remains largely unknown.
- TRP channels are implicated in various cellular signaling pathways.
Purpose of the Study:
- To investigate the expression and function of TRP channels, specifically TRPC5, in murine gonadotropes.
- To elucidate the contribution of TRPC5 to gonadotrope cell depolarization and calcium signaling.
- To understand the impact of TRPC5 on gonadotropin-releasing hormone (GnRH) stimulated responses.
Main Methods:
- Analysis of TRP channel gene expression in murine gonadotropes.
- Genetic confocal calcium imaging in whole-mount pituitary preparations.
- Electrophysiological recordings and experiments using TRPC5-deficient mice and TRPC5 agonists (Englerin A).
Main Results:
- Canonical TRP channel 5 (TRPC5) is highly expressed in juvenile female murine gonadotropes, with expression levels showing plasticity based on animal status.
- TRPC5 activation by Englerin A induces calcium influx and whole-cell currents, dependent on TRPC5 and forming heteromultimers with TRPC1.
- TRPC5-mediated depolarization activates voltage-gated calcium channels, and TRPC5 deficiency reduces GnRH-mediated depolarization in gonadotropes.
Conclusions:
- TRPC5 is a crucial ion channel in gonadotropes, contributing to plasma membrane depolarization.
- TRPC5 enhances intracellular calcium concentration through direct permeability and activation of voltage-gated calcium channels.
- TRPC5 plays a significant role in mediating GnRH-stimulated responses in the anterior pituitary.
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