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SNAREing Voltage-Gated K+ and ATP-Sensitive K+ Channels: Tuning β-Cell Excitability with Syntaxin-1A and Other Exocytotic Proteins
Author(s) -
YukMan Leung,
Edwin Kwan,
Betty Ng,
Youhou Kang,
Herbert Y. Gaisano
Publication year - 2007
Publication title -
endocrine reviews
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 6.357
H-Index - 272
eISSN - 1945-7189
pISSN - 0163-769X
DOI - 10.1210/er.2007-0010
Subject(s) - exocytosis , syntaxin , microbiology and biotechnology , munc 18 , sulfonylurea receptor , snap25 , synaptobrevin , secretion , vesicle fusion , chemistry , ion channel , biology , biophysics , vesicle , receptor , protein subunit , biochemistry , synaptic vesicle , membrane , gene
The three SNARE (soluble N-ethylmaleimide-sensitive factor attachment protein receptor) proteins, syntaxin, SNAP25 (synaptosome-associated protein of 25 kDa), and synaptobrevin, constitute the minimal machinery for exocytosis in secretory cells such as neurons and neuroendocrine cells by forming a series of complexes prior to and during vesicle fusion. It was subsequently found that these SNARE proteins not only participate in vesicle fusion, but also tether with voltage-dependent Ca(2+) channels to form an excitosome that precisely regulates calcium entry at the site of exocytosis. In pancreatic islet beta-cells, ATP-sensitive K(+) (K(ATP)) channel closure by high ATP concentration leads to membrane depolarization, voltage-dependent Ca(2+) channel opening, and insulin secretion, whereas subsequent opening of voltage-gated K(+) (Kv) channels repolarizes the cell to terminate exocytosis. We have obtained evidence that syntaxin-1A physically interacts with Kv2.1 (the predominant Kv in beta-cells) and the sulfonylurea receptor subunit of beta-cell K(ATP) channel to modify their gating behaviors. A model has proposed that the conformational changes of syntaxin-1A during exocytosis induce distinct functional modulations of K(ATP) and Kv2.1 channels in a manner that optimally regulates cell excitability and insulin secretion. Other proteins involved in exocytosis, such as Munc-13, tomosyn, rab3a-interacting molecule, and guanyl nucleotide exchange factor II, have also been implicated in direct or indirect regulation of beta-cell ion channel activities and excitability. This review discusses this interesting aspect that exocytotic proteins not only promote secretion per se, but also fine-tune beta-cell excitability via modulation of ion channel gating.

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