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Orexin-A-induced Ca2+ entry: evidence for involvement of trpc channels and protein kinase C regulation
Kim P Larsson1, Hanna M Peltonen, Genevieve Bart
1A. I. Virtanen Institute for Molecular Sciences, Department of Neurobiology, Laboratory of Cell Biology, University of Kuopio, P. O. Box 1627, FIN-70211 Kuopio, Finland.
Abstract:
The orexins are peptide transmitters/hormones, which exert stimulatory actions in many types of cells via the G-protein-coupled OX(1) and OX(2) receptors. Our previous results have suggested that low (subnanomolar) concentrations of orexin-A activate Ca(2+) entry, whereas higher concentrations activate phospholipase C, Ca(2+) release, and capacitative Ca(2+) entry. As shown here, the Ca(2+) response to subnanomolar orexin-A concentrations was blocked by activation of protein kinase C by using different approaches (12-O-tetradecanoylphorbol acetate, dioctanoylglycerol, and diacylglycerol kinase inhibition) and protein phosphatase inhibition by calyculin A. The Ca(2+) response to subnanomolar orexin-A concentrations was also blocked by Mg(2+), dextromethorphan, and tetraethylammonium. These treatments neither affected the response to high concentrations of orexin-A nor the thapsigargin-stimulated capacitative entry. The capacitative entry was instead strongly suppressed by SKF96365. An inward membrane current activated by subnanomolar concentrations of orexin-A and the currents activated upon transient expression of trpc3 channels were also sensitive to Mg(2+), dextromethorphan, and tetraethylammonium. Responses to subnanomolar concentrations of orexin-A (Ca(2+) elevation, inward current, and membrane depolarization) were voltage-dependent with a loss of the response around -15 mV. By using reverse transcription-PCR, mRNA for the trpc1-4 channel isoforms were detected in the CHO-hOX1-C1 cells. The expression of truncated TRPC channel isoforms, in particular trpc1 and trpc3, reduced the response to subnanomolar concentrations of orexin-A but did not affect the response to higher concentrations of orexin-A. The results suggest that activation of the OX(1) receptor leads to opening of a Ca(2+)-permeable channel, involving trpc1 and -3, which is controlled by protein kinase C.
Insights
Orexin-A at low concentrations activates calcium channels involving TRPC1 and TRPC3, a process regulated by protein kinase C. This signaling pathway is distinct from orexin-A
Area of Science:
- Neuroscience
- Cell Biology
- Molecular Biology
Background:
- Orexins are peptide neurotransmitters/hormones acting via G-protein-coupled OX(1) and OX(2) receptors.
- Previous studies indicated low orexin-A concentrations activate Ca(2+) entry, while higher concentrations activate phospholipase C and Ca(2+) release.
Purpose of the Study:
- To investigate the specific Ca(2+) signaling pathways activated by different concentrations of orexin-A.
- To identify the molecular components and regulatory mechanisms of orexin-A-mediated Ca(2+) entry.
Main Methods:
- Utilized various cell treatments including protein kinase C activators, phosphatase inhibitors, and specific channel blockers.
- Measured Ca(2+) responses, inward membrane currents, and membrane depolarization.
- Employed reverse transcription-PCR to detect TRPC channel isoform mRNA expression.
- Investigated the effects of TRPC channel isoform expression on orexin-A responses.
Main Results:
- Subnanomolar orexin-A-induced Ca(2+) responses were blocked by protein kinase C activation, protein phosphatase inhibition, Mg(2+), dextromethorphan, and tetraethylammonium.
- These blocking agents did not affect responses to high orexin-A concentrations or thapsigargin-stimulated capacitative entry.
- Orexin-A-activated inward currents and currents from TRPC3 expression were sensitive to Mg(2+), dextromethorphan, and tetraethylammonium.
- Responses to subnanomolar orexin-A were voltage-dependent.
- TRPC1 and TRPC3 expression modulated responses to subnanomolar orexin-A but not high concentrations.
Conclusions:
- Activation of OX(1) receptors by low orexin-A concentrations opens a Ca(2+)-permeable channel involving TRPC1 and TRPC3.
- This channel opening is regulated by protein kinase C.
- This pathway is distinct from the signaling cascade activated by higher orexin-A concentrations.
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