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Updated: Jan 9, 2026

Preparation of Pancreatic Acinar Cells for the Purpose of Calcium Imaging, Cell Injury Measurements, and Adenoviral Infection
Published on: July 5, 2013
A localized cAMP-Ca2+ signaling network in rat parotid acinar cells driven by the TAAR1 agonist RO5256390
Mayuko Ohno1, Masato Hirakawa2, Takuya Yokoyama3
1Division of Dental Anesthesiology Department of Reconstructive Oral and Maxillofacial Surgery Iwate Medical University Yahaba Japan.
Abstract:
Trace amine-associated receptor 1 (TAAR1) is highly expressed in rat parotid acinar cells; however, its role in exocrine Ca2+ signaling remains unclear. We herein demonstrated that the selective TAAR1 agonist RO5256390 induced rapid and transient increases in intracellular Ca2+ levels that were completely abolished by the TAAR1 antagonist EPPTB, confirming receptor specificity. Pharmacological dissection revealed dual contributions from extracellular Ca2+ influx via L-type, T-type, and receptor-operated channels and Ca2+ release from intracellular stores mediated by phospholipase C, inositol trisphosphate receptors, and ryanodine receptors. Inhibition of adenylyl cyclase or protein kinase A (PKA) nearly abolished the Ca2+ response, and displacement of PKA from AKAPs using the cell-permeable AKAP-displacing peptide st-Ht31 produced a comparable suppression, underscoring the requirement for microdomain-restricted PKA activity. Exchange protein directly activated by cAMP 2 (Epac 2) and downstream calmodulin-dependent protein kinase II were also indispensable, whereas Epac 1 was dispensable. The present study identified a TAAR1-centered, 3',5'-cyclic adenosine monophosphate microdomain network that co-ordinates Ca2+ entry and release, thereby providing novel targets for the modulation of salivary secretion.
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