Background leak K+-currents and oxygen sensing in carotid body type 1 cells.

One model of oxygen sensing by the carotid body is that hypoxia depolarises type 1 cells leading to voltage-gated calcium entry and the secretion of neurotransmitters which then excite afferent nerves. This paper revues the mechanisms responsible for the membrane depolarisation in response to hypoxi...

Full description

Bibliographic Details
Main Author: Buckler, K
Format: Journal article
Language:English
Published: 1999
_version_ 1826262682261520384
author Buckler, K
author_facet Buckler, K
author_sort Buckler, K
collection OXFORD
description One model of oxygen sensing by the carotid body is that hypoxia depolarises type 1 cells leading to voltage-gated calcium entry and the secretion of neurotransmitters which then excite afferent nerves. This paper revues the mechanisms responsible for the membrane depolarisation in response to hypoxia. It concludes that depolarisation is caused not through the inhibition of calcium activated or delayed rectifier K+-channels but through the inhibition of an entirely new type of background K+-channel. This channel lacks sensitivity to the classical K+-channel inhibitors TEA and 4-AP. New evidence does however reveal that background K+-channels in the type 1 cell can be inhibited by Ba2+ and that Ba2+ depolarises isolated type 1 cells. Intriguingly, Ba2+ is the only K+-channel inhibitor thus far reported to stimulate the carotid body. These studies therefore support the hypothesis that depolarisation of the type 1 cell is an integral part of the oxygen sensing pathway in the carotid body.
first_indexed 2024-03-06T19:39:55Z
format Journal article
id oxford-uuid:204d9bdb-13bf-4036-83ad-41fa400f81ed
institution University of Oxford
language English
last_indexed 2024-03-06T19:39:55Z
publishDate 1999
record_format dspace
spelling oxford-uuid:204d9bdb-13bf-4036-83ad-41fa400f81ed2022-03-26T11:26:54ZBackground leak K+-currents and oxygen sensing in carotid body type 1 cells.Journal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:204d9bdb-13bf-4036-83ad-41fa400f81edEnglishSymplectic Elements at Oxford1999Buckler, KOne model of oxygen sensing by the carotid body is that hypoxia depolarises type 1 cells leading to voltage-gated calcium entry and the secretion of neurotransmitters which then excite afferent nerves. This paper revues the mechanisms responsible for the membrane depolarisation in response to hypoxia. It concludes that depolarisation is caused not through the inhibition of calcium activated or delayed rectifier K+-channels but through the inhibition of an entirely new type of background K+-channel. This channel lacks sensitivity to the classical K+-channel inhibitors TEA and 4-AP. New evidence does however reveal that background K+-channels in the type 1 cell can be inhibited by Ba2+ and that Ba2+ depolarises isolated type 1 cells. Intriguingly, Ba2+ is the only K+-channel inhibitor thus far reported to stimulate the carotid body. These studies therefore support the hypothesis that depolarisation of the type 1 cell is an integral part of the oxygen sensing pathway in the carotid body.
spellingShingle Buckler, K
Background leak K+-currents and oxygen sensing in carotid body type 1 cells.
title Background leak K+-currents and oxygen sensing in carotid body type 1 cells.
title_full Background leak K+-currents and oxygen sensing in carotid body type 1 cells.
title_fullStr Background leak K+-currents and oxygen sensing in carotid body type 1 cells.
title_full_unstemmed Background leak K+-currents and oxygen sensing in carotid body type 1 cells.
title_short Background leak K+-currents and oxygen sensing in carotid body type 1 cells.
title_sort background leak k currents and oxygen sensing in carotid body type 1 cells
work_keys_str_mv AT bucklerk backgroundleakkcurrentsandoxygensensingincarotidbodytype1cells