中性粒细胞中离子通道和受体介导的Ca2+内流。

Blood cells Pub Date : 1993-01-01
K H Krause, N Demaurex, M Jaconi, D P Lew
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引用次数: 0

摘要

虽然通常被归类为不可兴奋细胞,但人类中性粒细胞具有多种离子通道,在细胞活动的调节中起着至关重要的作用。受体介导的Ca2+内流中性粒细胞的机制是复杂的。受体激动剂通过生成Ins(1,4,5)P3来清空细胞内Ca2+储存。细胞内Ca2+储存的排空导致Ca2+跨质膜内流的激活,这是迄今为止尚未理解的机制。中性粒细胞至少具有2种K+通道。电压激活的K+通道对维持静息电位很重要,Ca2+激活的K+通道对细胞激活后的复极化很重要。中性粒细胞还具有电压和pH激活的H+通道,用于挤出由中性粒细胞呼吸爆发产生的质子。中性粒细胞对激动剂的激活作出去极化反应。中性粒细胞去极化的机制涉及呼吸爆发氧化酶的电子传递。中性粒细胞去极化是一种负反馈机制,它也激活H+通道,从而刺激质子的挤压。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ion channels and receptor-mediated Ca2+ influx in neutrophil granulocytes.

Although generally classified as non-excitable cells, human neutrophils possess a variety of ion channels that play a crucial role in the regulation of cellular activity. The mechanism of receptor-mediated Ca2+ influx in neutrophils is complex. Receptor agonists empty intracellular Ca2+ stores via generation of Ins(1,4,5)P3. The emptying of intracellular Ca2+ stores leads by an hitherto not understood mechanism to the activation of Ca2+ influx across the plasma membrane. Neutrophils possess at least 2 types of K+ channels. Voltage-activated K+ channels, important for the maintenance of the resting potential, and Ca2+ activated K+ channels, important for the repolarization after cellular activation. Neutrophils also possess voltage- and pH activated H+ channels that serve to extrude protons, generated by the neutrophil respiratory burst. Neutrophils depolarize in response to activation by agonists. The mechanism of neutrophil depolarization involves electron transport by the respiratory burst oxidase. Neutrophil depolarization serves as a negative feed-back mechanism, it also activates the H+ channels and thereby stimulates extrusion of protons.

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