An oxygen-, acid- and anaesthetic-sensitive TASK-like background potassiumchannel in rat arterial chemoreceptor cells

Citation
Kj. Buckler et al., An oxygen-, acid- and anaesthetic-sensitive TASK-like background potassiumchannel in rat arterial chemoreceptor cells, J PHYSL LON, 525(1), 2000, pp. 135-142
Citations number
26
Categorie Soggetti
Physiology
Journal title
JOURNAL OF PHYSIOLOGY-LONDON
ISSN journal
00223751 → ACNP
Volume
525
Issue
1
Year of publication
2000
Pages
135 - 142
Database
ISI
SICI code
0022-3751(20000515)525:1<135:AOAAAT>2.0.ZU;2-G
Abstract
1. The biophysical and pharmacological properties of an oxygen-sensitive ba ckground K+ current in rat carotid body type-I cells were investigated and compared with those of recently cloned two pore domain K+ channels. 2. Under symmetrical K+ conditions the,oxygen-sensitive whole cell K+ curre nt had a linear dependence on voltage indicating a lack of intrinsic voltag e sensitivity 3. Single channel recordings identified a K+ channel, open at resting membr ane potentials, that was inhibited by hypoxia. This channel had a single ch annel conductance of 14 pS, flickery kinetics and showed little voltage sen sitivity except at extreme positive potentials. 4. Oxygen-sensitive current was inhibited by 10 mM barium (57% inhibition), 200 mu M zinc (53% inhibition), 200 mu M bupivacaine (55% inhibition) and 1 mM quinidine (105% inhibition). 5. The general anaesthetic halothane (1.5%) increased the oxygen-sensitive K+ current (by 176%). Halothane (3 mM) also stimulated single channel activ ity in inside-out patches (by 240%). Chloroform had no effect un background K+ channel activity 6. Acidosis (pH 6.4) inhibited the oxygen-sensitive background K+ current ( by 56%) and depolarised type-I cells. 7. The pharmacological and biophysical properties of the background K+ chan nel are, therefore, analogous to those of the cloned channel TASK-1. Using in situ hybridisation TASK-1 mRNA was found to be expressed in type-I cells . We conclude that the oxygen- and acid-sensitive background K+ channel of carotid body type-I cells is likely to be an endogenous TASK-1-like channel .