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球细胞的钾离子电流与颈动脉体的化学感受功能

K+ currents of glomus cells and chemosensory functions of carotid body.

作者信息

Donnelly D F

机构信息

Department of Pediatrics, Yale University School of Medicine, New Haven, CT 06524, USA.

出版信息

Respir Physiol. 1999 Apr 1;115(2):151-60. doi: 10.1016/s0034-5687(99)00021-3.

Abstract

The mechanism by which the carotid body senses hypoxia is not resolved, but the glomus cell, a secretory cell apposed to the afferent nerve endings, is believed to play an essential role. It is proposed that hypoxia causes glomus cell depolarization, leading to activation of voltage-gated calcium influx and enhanced secretion of an excitatory transmitter. The initial step, hypoxia induced depolarization, may be mediated by several candidate K+ channels which are sensitive to hypoxia, including: (1) a transient, voltage-dependent current; (2) a calcium and voltage dependent current; and (3) a non-voltage dependent, leak K+ current. If these channels represent the initial step in the hypoxia transduction cascade then it would be expected that K+ channel blocking agents would mimic the hypoxia response, leading to glomus cell secretion and increased nerve activity. This has been tested for the first two channels which are sensitive to classical K+ channel blocking agents, and, in general, results have not borne out this prediction. At present, the pharmacology of the leak K+ channel is not determined, and the experiment has not been undertaken. Thus, at present, hypoxic inhibition to a K+ channel in the glomus cell may initiate chemotransduction but there are many unanswered questions, especially the failure of K+ channel blocking agents to emulate the hypoxic response.

摘要

颈动脉体感知缺氧的机制尚未明确,但球细胞(一种与传入神经末梢相邻的分泌细胞)被认为起着至关重要的作用。有人提出,缺氧会导致球细胞去极化,进而激活电压门控钙内流并增强兴奋性递质的分泌。最初的步骤,即缺氧诱导的去极化,可能由几种对缺氧敏感的候选钾通道介导,包括:(1)一种瞬时的、电压依赖性电流;(2)一种钙和电压依赖性电流;以及(3)一种非电压依赖性的钾离子泄漏电流。如果这些通道代表缺氧转导级联反应的初始步骤,那么可以预期钾通道阻断剂会模拟缺氧反应,导致球细胞分泌并增加神经活动。对于前两种对经典钾通道阻断剂敏感的通道已经进行了测试,但总体而言,结果并未证实这一预测。目前,钾离子泄漏通道的药理学特性尚未确定,相关实验也尚未开展。因此,目前球细胞中钾通道的缺氧抑制作用可能启动了化学转导,但仍有许多问题未得到解答,尤其是钾通道阻断剂未能模拟缺氧反应这一问题。

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