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在尾草履虫的钾离子刺激突变体中,负责延长向后游动的钾离子诱导的钙离子电导。

K+-induced Ca2+ conductance responsible for the prolonged backward swimming in K+-agitated mutant of Paramecium caudatum.

作者信息

Oami K, Takahashi M

机构信息

Institute of Biological Sciences, University of Tsukuba, Tsukuba Ibaraki 305-8572, Japan.

出版信息

J Membr Biol. 2003 Sep 15;195(2):85-92. doi: 10.1007/s00232-003-2047-3.

Abstract

The K+-agitated (Kag) mutant of Paramecium caudatum shows prolonged backward swimming in K+-rich solution. To understand the regulation mechanisms of the ciliary motility in P. caudatum, we examined the membrane electrical properties of the Kag mutant. The duration of the backward swimming of the Kag in K+-rich solution was about 10 times longer than that of the wild type. In response to an injection of the outward current, the wild type produced an initial action potential and a subsequent membrane depolarization due to I-R potential drop, while the Kag exhibited repetitive action potentials during the depolarization. Under voltage-clamp conditions, the depolarization-activated transient inward current exhibited by the Kag was slightly smaller than that exhibited by the wild type. In response to an application of K+-rich solution, both the wild type and the Kag exhibited a depolarizing afterpotential representing the activation of the K+-induced Ca2+ conductance. The inactivation time course of the K+-induced Ca2+ conductance of Kag was about 10 times longer than that of the wild type. This difference corresponds well with the difference in behavioral responses between Kag and wild type to K+-rich solution. We conclude that the overreaction of the Kag mutant to the K+-rich solution is caused by slowing down of the inactivation of the K+-induced Ca2+ conductance.

摘要

尾草履虫的钾离子激活(Kag)突变体在富含钾离子的溶液中表现出向后游动时间延长的现象。为了解尾草履虫纤毛运动的调节机制,我们检测了Kag突变体的膜电特性。Kag在富含钾离子的溶液中向后游动的持续时间比野生型长约10倍。在注入外向电流时,野生型会产生一个初始动作电位以及随后由于I-R电位降导致的膜去极化,而Kag在去极化过程中表现出重复动作电位。在电压钳制条件下,Kag表现出的去极化激活的瞬时内向电流略小于野生型。在施加富含钾离子的溶液时,野生型和Kag均表现出代表钾离子诱导的钙离子电导激活的去极化后电位。Kag的钾离子诱导的钙离子电导的失活时间进程比野生型长约10倍。这种差异与Kag和野生型对富含钾离子溶液的行为反应差异非常吻合。我们得出结论,Kag突变体对富含钾离子溶液的过度反应是由钾离子诱导的钙离子电导失活减慢引起的。

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