Stimulation of GLP-1 Secretion Downstream of the Ligand-Gated Ion Channel TRPA1
Author(s) -
Edward C. Emery,
Eleftheria Diakogiannaki,
Clive Gentry,
Arianna Psichas,
Abdella M. Habib,
Stuart Bevan,
Michael J. M. Fischer,
Frank Reimann,
Fiona M. Gribble
Publication year - 2014
Publication title -
diabetes
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 3.219
H-Index - 330
eISSN - 1939-327X
pISSN - 0012-1797
DOI - 10.2337/db14-0737
Subject(s) - enteroendocrine cell , secretion , incretin , stimulation , transient receptor potential channel , chemistry , microbiology and biotechnology , receptor , tropomyosin receptor kinase b , cell culture , biology , endocrinology , biochemistry , type 2 diabetes , neurotrophic factors , endocrine system , hormone , diabetes mellitus , genetics
Stimulus-coupled incretin secretion from enteroendocrine cells plays a fundamental role in glucose homeostasis and could be targeted for the treatment of type 2 diabetes. Here, we investigated the expression and function of transient receptor potential (TRP) ion channels in enteroendocrine L cells producing GLP-1. By microarray and quantitative PCR analysis, we identified trpa1 as an L cell-enriched transcript in the small intestine. Calcium imaging of primary L cells and the model cell line GLUTag revealed responses triggered by the TRPA1 agonists allyl-isothiocyanate (mustard oil), carvacrol, and polyunsaturated fatty acids, which were blocked by TRPA1 antagonists. Electrophysiology in GLUTag cells showed that carvacrol induced a current with characteristics typical of TRPA1 and triggered the firing of action potentials. TRPA1 activation caused an increase in GLP-1 secretion from primary murine intestinal cultures and GLUTag cells, an effect that was abolished in cultures from trpa1(-/-) mice or by pharmacological TRPA1 inhibition. These findings present TRPA1 as a novel sensory mechanism in enteroendocrine L cells, coupled to the facilitation of GLP-1 release, which may be exploitable as a target for treating diabetes.
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