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Rat Merkel Cells Are Mechanoreceptors and Osmoreceptors
Author(s) -
Nicholas Boulais,
JeanPierre Pennec,
Nicolas Lebonvallet,
Ulysse Pereira,
Nathalie Rougier,
Germaine Dorange,
Christophe Chesné,
L. Misery
Publication year - 2009
Publication title -
plos one
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.99
H-Index - 332
ISSN - 1932-6203
DOI - 10.1371/journal.pone.0007759
Subject(s) - mechanotransduction , mechanosensitive channels , neuroscience , electrophysiology , hyperpolarization (physics) , osmoreceptor , mechanosensation , microbiology and biotechnology , biology , mechanoreceptor , anatomy , chemistry , stimulation , ion channel , biochemistry , hypothalamus , organic chemistry , receptor , nuclear magnetic resonance spectroscopy
Merkel cells (MCs) associated with nerve terminals constitute MC-neurite complexes, which are involved in slowly-adapting type I mechanoreception. Although MCs are known to express voltage-gated Ca 2+ channels and hypotonic-induced membrane deformation is known to lead to Ca 2+ transients, whether MCs initiate mechanotransduction is currently unknown. To answer to this question, rat MCs were transfected with a reporter vector, which enabled their identification. Their properties were investigated through electrophysiological studies. Voltage-gated K + , Ca 2+ and Ca 2+ -activated K + (K Ca ) channels were identified, as previously described. Here, we also report the activation of Ca 2+ channels by histamine and their inhibition by acetylcholine. As a major finding, we demonstrated that direct mechanical stimulations induced strong inward Ca 2+ currents in MCs. Depolarizations were dependent on the strength and the length of the stimulation. Moreover, touch-evoked currents were inhibited by the stretch channel antagonist gadolinium. These data confirm the mechanotransduction capabilities of MCs. Furthermore, we found that activation of the osmoreceptor TRPV4 in FM1-43-labeled MCs provoked neurosecretory granule exocytosis. Since FM1-43 blocks mechanosensory channels, this suggests that hypo-osmolarity activates MCs in the absence of mechanotransduction. Thus, mechanotransduction and osmoreception are likely distinct pathways.

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