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J Biol Chem
2010 May 07;28519:14549-57. doi: 10.1074/jbc.M110.102020.
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TRESK background K(+) channel is inhibited by phosphorylation via two distinct pathways.
Enyedi P.
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The two-pore domain K(+) channel, TRESK (TWIK-related spinal cord K(+) channel, KCNK18) is directly regulated by the calcium/calmodulin-dependent phosphatase calcineurin and 14-3-3 adaptor proteins. The calcium signal robustly activates the channel via calcineurin, whereas the anchoring of 14-3-3 interferes with the return of the current to the resting state after the activation in Xenopus oocytes. In the present study, we report that the phosphorylation of TRESK at two distinct regulatory regions, the 14-3-3 binding site (Ser-264) and the cluster of three adjacent serine residues (Ser-274, Ser-276, and Ser-279), are responsible for channel inhibition. The phosphorylation of Ser-264 by protein kinase A accelerated the return of the current of S276E mutant TRESK to the resting state after the calcineurin-dependent activation. In the presence of 14-3-3, the basal current of the S276E mutant was reduced, and its calcineurin-dependent activation was augmented, suggesting that the direct binding of the adaptor protein to TRESK contributed to the basal inhibition of the channel under resting conditions. Unexpectedly, we found that 14-3-3 impeded the recovery of the current of S264E mutant TRESK to the resting state after the calcineurin-dependent activation, despite of the mutated 14-3-3 binding site. This suggests that 14-3-3 inhibited the kinase phosphorylating the regulatory cluster of Ser-274, Ser-276, and Ser-279, independently of the direct interaction between TRESK and 14-3-3. In conclusion, two distinct inhibitory kinase pathways converge on TRESK, and their effect on the calcineurin-dependent regulation is differentially modulated by the functional availability of 14-3-3.
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,
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,
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2002,
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,
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2004,
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,
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,
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2008,
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,
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TRESK two-pore-domain K+ channels constitute a significant component of background potassium currents in murine dorsal root ganglion neurones.
2007,
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,
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TASK, a human background K+ channel to sense external pH variations near physiological pH.
1997,
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,
Xenbase Egenberger,
N-linked glycosylation determines cell surface expression of two-pore-domain K+ channel TRESK.
2010,
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,
Xenbase Fink,
Cloning, functional expression and brain localization of a novel unconventional outward rectifier K+ channel.
1996,
Pubmed
,
Xenbase Fink,
A neuronal two P domain K+ channel stimulated by arachidonic acid and polyunsaturated fatty acids.
1998,
Pubmed
,
Xenbase Gerhold,
Molecular and cellular mechanisms of trigeminal chemosensation.
2009,
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Genomic and functional characteristics of novel human pancreatic 2P domain K(+) channels.
2001,
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,
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TRESK channel as a potential target to treat T-cell mediated immune dysfunction.
2009,
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Roles of TRESK, a novel two-pore domain K+ channel, in pain pathway and general anesthesia.
2008,
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TREK-2 (K2P10.1) and TRESK (K2P18.1) are major background K+ channels in dorsal root ganglion neurons.
2006,
Pubmed Kang,
Functional expression of TRESK-2, a new member of the tandem-pore K+ channel family.
2004,
Pubmed Kang,
Lamotrigine inhibits TRESK regulated by G-protein coupled receptor agonists.
2008,
Pubmed Keshavaprasad,
Species-specific differences in response to anesthetics and other modulators by the K2P channel TRESK.
2005,
Pubmed Kim,
TASK-3, a new member of the tandem pore K(+) channel family.
2000,
Pubmed Li,
Structural delineation of the calcineurin-NFAT interaction and its parallels to PP1 targeting interactions.
2004,
Pubmed Li,
Structure of calcineurin in complex with PVIVIT peptide: portrait of a low-affinity signalling interaction.
2007,
Pubmed Liu,
Potent activation of the human tandem pore domain K channel TRESK with clinical concentrations of volatile anesthetics.
2004,
Pubmed
,
Xenbase Muslin,
Interaction of 14-3-3 with signaling proteins is mediated by the recognition of phosphoserine.
1996,
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,
Xenbase O'Kelly,
Forward Transport of K2p3.1: mediation by 14-3-3 and COPI, modulation by p11.
2008,
Pubmed
,
Xenbase O'Kelly,
Forward transport. 14-3-3 binding overcomes retention in endoplasmic reticulum by dibasic signals.
2002,
Pubmed Patel,
Inhalational anesthetics activate two-pore-domain background K+ channels.
1999,
Pubmed Pottosin,
TRESK-like potassium channels in leukemic T cells.
2008,
Pubmed Rajan,
Interaction with 14-3-3 proteins promotes functional expression of the potassium channels TASK-1 and TASK-3.
2002,
Pubmed
,
Xenbase Reyes,
Cloning and expression of a novel pH-sensitive two pore domain K+ channel from human kidney.
1998,
Pubmed Sano,
A novel two-pore domain K+ channel, TRESK, is localized in the spinal cord.
2003,
Pubmed Smith,
Calcineurin as a nociceptor modulator.
2009,
Pubmed Thorson,
14-3-3 proteins are required for maintenance of Raf-1 phosphorylation and kinase activity.
1998,
Pubmed Valencia-Cruz,
K(bg) and Kv1.3 channels mediate potassium efflux in the early phase of apoptosis in Jurkat T lymphocytes.
2009,
Pubmed Veale,
Identification of a region in the TASK3 two pore domain potassium channel that is critical for its blockade by methanandamide.
2007,
Pubmed Yang,
Anesthetic properties of the ketone bodies beta-hydroxybutyric acid and acetone.
2007,
Pubmed
,
Xenbase Yoo,
Regional expression of the anesthetic-activated potassium channel TRESK in the rat nervous system.
2009,
Pubmed