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牛蛙交感神经元中一种对咖啡因和兰尼碱敏感的Ca2+储存库可调节Ca2+内流对细胞内Ca2+浓度([Ca2+]i)的影响。

A caffeine- and ryanodine-sensitive Ca2+ store in bullfrog sympathetic neurones modulates effects of Ca2+ entry on [Ca2+]i.

作者信息

Friel D D, Tsien R W

机构信息

Department of Molecular and Cellular Physiology, Stanford University School of Medicine, CA 94305-5426.

出版信息

J Physiol. 1992 May;450:217-46. doi: 10.1113/jphysiol.1992.sp019125.

Abstract
  1. We studied how in changes in cytosolic free Ca2+ concentration ([Ca2+]i) produced by voltage-dependent Ca2+ entry are influenced by a caffeine-sensitive Ca2+ store in bullfrog sympathetic neurones. Ca2+ influx was elicited by K+ depolarization and the store was manipulated with either caffeine or ryanodine. 2. For a time after discharging the store with caffeine and switching to a caffeine-free medium: (a) [Ca2+]i was depressed by up to 40-50 nM below the resting level, (b) caffeine responsiveness was diminished, and (c) brief K+ applications elicited [Ca2+]i responses with slower onset and faster recovery than controls. These effects were more pronounced as the conditioning caffeine concentration was increased over the range 1-30 mM. 3. [Ca2+]i, caffeine and K+ responsiveness recovered in parallel with a half-time of approximately 2 min. Recovery required external Ca2+ and was speeded by increasing the availability of cytosolic Ca2+, suggesting that it reflected replenishment of the store at the expense of cytosolic Ca2+. 4. During recovery, Ca2+ entry stimulated by depolarization had the least effect on [Ca2+]i when the store was filling most rapidly. This suggests that the effect of Ca2+ entry on [Ca2+]i is modified, at least in part, because some of the Ca2+ which enters the cytosol during stimulation is taken up by the store as it refills. 5. Further experiments were carried out to investigate whether the store can also release Ca2+ in response to stimulated Ca2+ entry. In the continued presence of caffeine at a low concentration (1 mM), high K+ elicited a faster and larger [Ca2+]i response compared to controls; at higher concentrations of caffeine (10 and 30 mM) responses were depressed. 6. Ryanodine (1 microM) reduced the rate at which [Ca2+]i increased with Ca2+ entry, but not to the degree observed after discharging the store. At this concentration, ryanodine completely blocked responses to caffeine but had no detectable effect on Ca2+ channel current or the steady [Ca2+]i level achieved during depolarization. 7. We propose that, depending on its Ca2+ content, the caffeine-sensitive store can either attenuate or potentiate responses to depolarization. When depleted and in the process of refilling, the store reduces the impact of Ca2+ entry as some of the Ca2+ entering the cytosol during stimulation is captured by the store.(ABSTRACT TRUNCATED AT 400 WORDS)
摘要
  1. 我们研究了牛蛙交感神经元中电压依赖性钙内流所产生的胞质游离钙浓度([Ca2+]i)变化是如何受到咖啡因敏感钙库影响的。通过钾离子去极化引发钙内流,并用咖啡因或兰尼碱对钙库进行调控。2. 在用咖啡因排空钙库并切换到无咖啡因培养基后的一段时间内:(a)[Ca2+]i 比静息水平降低多达 40 - 50 nM,(b)咖啡因反应性降低,(c)短暂施加钾离子引发的 [Ca2+]i 反应相较于对照组起始更慢且恢复更快。随着预处理咖啡因浓度在 1 - 30 mM 范围内增加,这些效应更为明显。3. [Ca2+]i、咖啡因和钾离子反应性以约 2 分钟的半衰期平行恢复。恢复需要细胞外钙,并且通过增加胞质钙的可用性而加速,这表明其反映了以胞质钙为代价的钙库补充。4. 在恢复过程中,当钙库填充最快时,去极化刺激的钙内流对 [Ca2+]i 的影响最小。这表明钙内流对 [Ca2+]i 的影响至少部分被改变,因为刺激期间进入胞质的一些钙在钙库重新填充时被其摄取。5. 进行了进一步实验以研究钙库是否也能响应刺激的钙内流而释放钙。在低浓度(1 mM)咖啡因持续存在的情况下,与对照组相比,高钾引发更快且更大的 [Ca2+]i 反应;在较高浓度咖啡因(10 和 30 mM)下反应受到抑制。6. 兰尼碱(1 μM)降低了 [Ca2+]i 随钙内流增加的速率,但未达到排空钙库后观察到的程度。在此浓度下,兰尼碱完全阻断对咖啡因的反应,但对钙通道电流或去极化期间达到的稳定 [Ca2+]i 水平无明显影响。7. 我们提出,根据其钙含量,咖啡因敏感钙库可以减弱或增强对去极化的反应。当耗尽并处于重新填充过程中时,钙库会降低钙内流的影响,因为刺激期间进入胞质的一些钙被钙库捕获。(摘要截断于 400 字)

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