THIK-1 (K(2P)13.1) is a small-conductance background K+ channel in rat trigeminal ganglion neuronsopen access
- Authors
- Kang, Dawon; Hogan, James O.; Kim, Donghee
- Issue Date
- Jul-2014
- Publisher
- SPRINGER
- Keywords
- Arachidonic acid; Background K+ channel; Cold; Halothane; Hypoxia; Two-pore domain
- Citation
- PFLUGERS ARCHIV-EUROPEAN JOURNAL OF PHYSIOLOGY, v.466, no.7, pp 1289 - 1300
- Pages
- 12
- Indexed
- SCI
SCIE
SCOPUS
- Journal Title
- PFLUGERS ARCHIV-EUROPEAN JOURNAL OF PHYSIOLOGY
- Volume
- 466
- Number
- 7
- Start Page
- 1289
- End Page
- 1300
- URI
- https://scholarworks.gnu.ac.kr/handle/sw.gnu/18913
- DOI
- 10.1007/s00424-013-1358-1
- ISSN
- 0031-6768
1432-2013
- Abstract
- The goal of this study was to determine the molecular identity of a small-conductance (similar to 5-pS) background K+ channel expressed in trigeminal ganglion (TG) neurons. We tested the hypothesis that the 5-pS channel is a K-2P channel by comparing the pharmacological and single-channel properties of THIK-1 expressed in HEK293 cells. As reported earlier, whole-cell THIK-1 current was inhibited by halothane and activated by arachidonic acid. Among 25 additional modulators tested, bupivacaine (100 mu M), quinidine (50 mu M) and Ba2+ (3 mM) and cold (10 A degrees C) were most effective inhibitors of THIK-1 current (> 50 % inhibition). In cell-attached patches with high KCl in the pipette and bath solutions, THIK-1 produced a small-conductance (similar to 5 pS) channel with a weak inwardly rectifying current-voltage relationship. Halothane, bupivacaine and cold inhibited the single-channel activities of both THIK-1 and the 5-pS channel in TG neurons, whereas arachidonic acid augmented them. THIK-1 expressed in HEK293 cells and the 5-pS channels in TG neurons were insensitive to hypoxia. Reverse transcriptase-PCR, Western blot and immunocytochemical analyses suggested that THIK-1 mRNA and protein were expressed in TG neurons. These results show that THIK-1 is functionally expressed in TG neurons and contributes to the background K+ conductance.
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