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ATP‐Sensitive Potassium Channels and Their Physiological and Pathophysiological Roles
Author(s) -
Tinker Andrew,
Aziz Qadeer,
Li Yiwen,
Specterman Mark
Publication year - 2018
Publication title -
comprehensive physiology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 3.207
H-Index - 80
ISSN - 2040-4603
DOI - 10.1002/cphy.c170048
Subject(s) - sulfonylurea receptor , kir6.2 , potassium channel , atp sensitive potassium channel , microbiology and biotechnology , protein subunit , inward rectifier potassium ion channel , hyperinsulinism , chemistry , diazoxide , receptor , biology , biochemistry , insulin , ion channel , endocrinology , glibenclamide , insulin resistance , diabetes mellitus , gene
ABSTRACT ATP sensitive potassium channels (K ATP ) are so named because they open as cellular ATP levels fall. This leads to membrane hyperpolarization and thus links cellular metabolism to membrane excitability. They also respond to MgADP and are regulated by a number of cell signaling pathways. They have a rich and diverse pharmacology with a number of agents acting as specific inhibitors and activators. K ATP channels are formed of pore‐forming subunits, Kir6.1 and Kir6.2, and a large auxiliary subunit, the sulfonylurea receptor (SUR1, SUR2A, and SUR2B). The Kir6.0 subunits are a member of the inwardly rectifying family of potassium channels and the sulfonylurea receptor is part of the ATP‐binding cassette family of proteins. Four SURs and four Kir6.x form an octameric channel complex and the association of a particular SUR with a specific Kir6.x subunit constitutes the K ATP current in a particular tissue. A combination of mutagenesis work combined with structural studies has identified how these channels work as molecular machines. They have a variety of physiological roles including controlling the release of insulin from pancreatic β cells and regulating blood vessel tone and blood pressure. Furthermore, mutations in the genes underlie human diseases such as congenital diabetes and hyperinsulinism. Additionally, opening of these channels is protective in a number of pathological conditions such as myocardial ischemia and stroke. © 2018 American Physiological Society. Compr Physiol 8:1463‐1511, 2018.

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