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The interplay between α7 nicotinic acetylcholine receptors, pannexin‐1 channels and P2X7 receptors elicit exocytosis in chromaffin cells
Author(s) -
Maldifassi María C.,
Momboisse Fanny,
Guerra María J.,
Vielma Alex H.,
Maripillán Jaime,
BáezMatus Ximena,
FloresMuñoz Carolina,
Cádiz Bárbara,
Schmachtenberg Oliver,
Martínez Agustín D.,
Cárdenas Ana M.
Publication year - 2021
Publication title -
journal of neurochemistry
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.75
H-Index - 229
eISSN - 1471-4159
pISSN - 0022-3042
DOI - 10.1111/jnc.15186
Subject(s) - pannexin , microbiology and biotechnology , apyrase , crosstalk , receptor , nicotinic agonist , exocytosis , extracellular , acetylcholine receptor , biology , purinergic receptor , chemistry , biophysics , intracellular , biochemistry , connexin , gap junction , membrane , physics , optics
Pannexin‐1 (Panx1) forms plasma membrane channels that allow the exchange of small molecules between the intracellular and extracellular compartments, and are involved in diverse physiological and pathological responses in the nervous system. However, the signaling mechanisms that induce their opening still remain elusive. Here, we propose a new mechanism for Panx1 channel activation through a functional crosstalk with the highly Ca 2+ permeable α7 nicotinic acetylcholine receptor (nAChR). Consistent with this hypothesis, we found that activation of α7 nAChRs induces Panx1‐mediated dye uptake and ATP release in the neuroblastoma cell line SH‐SY5Y‐α7. Using membrane permeant Ca 2+ chelators, total internal reflection fluorescence microscopy in SH‐SY5Y‐α7 cells expressing a membrane‐tethered GCAMP3, and Src kinase inhibitors, we further demonstrated that Panx1 channel opening depends on Ca 2+ signals localized in submembrane areas, as well as on Src kinases. In turn, Panx1 channels amplify cytosolic Ca 2+ signals induced by the activation of α7 nAChRs, by a mechanism that seems to involve ATP release and P2X7 receptor activation, as hydrolysis of extracellular ATP with apyrase or blockage of P2X7 receptors with oxidized ATP significantly reduces the α7 nAChR‐Ca 2+ signal. The physiological relevance of this crosstalk was also demonstrated in neuroendocrine chromaffin cells, wherein Panx1 channels and P2X7 receptors contribute to the exocytotic release of catecholamines triggered by α7 nAChRs, as measured by amperometry. Together these findings point to a functional coupling between α7 nAChRs, Panx1 channels and P2X7 receptors with physiological relevance in neurosecretion.