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Ca2+ influx in resting rat sensory neurones that regulates and is regulated by ryanodine-sensitive Ca2+ stores

机译:Ca2 +流入静息大鼠的感觉神经元中,该神经元调节并受瑞丹碱敏感的Ca2 +存储区调节

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摘要

Store-operated, voltage-independent Ca2+ channels are activated by depletion of intracellular Ca2+ stores and mediate Ca2+ influx into non-excitable cells at resting membrane potential. We used microfluorimetry, patch-clamp and Mn2+-quench techniques to explore the possibility that a similar mechanism exists in rat dorsal root ganglion (DRG) neurones in primary culture.Following caffeine-induced depletion, ryanodine-sensitive Ca2+ stores refilled with Ca2+ at resting membrane potential. The refilling process required extracellular Ca2+, was blocked by 2 mM Ni2+, and was facilitated by membrane hyperpolarization from −55 to −80 mV, indicating a key role for Ca2+ influx. This influx of Ca2+ was not affected by the voltage-operated Ca2+ channel (VOCC) antagonists nicardipine (10 μM), nimodipine (10 μm) or ω-grammotoxin SIA (1 μm).When ryanodine-sensitive Ca2+ stores were depleted in Ca2+-free media, a return to 2 mM external Ca2+ resulted in a pronounced [Ca2+]i overshoot, indicating an increased permeability to Ca2+. Depletion of Ca2+ stores also produced a 2-fold increase in the rate of Mn2+ influx. The [Ca2+]i overshoot and Mn2+ entry were both inhibited by Ni2+, but not by VOCC antagonists.Caffeine induced periodic Ca2+ release from, and reuptake into, ryanodine-sensitive stores. The [Ca2+]i oscillations were arrested by removal of extracellular Ca2+ or by addition of Ni2+, but they were not affected by VOCC antagonists. Hyperpolarization increased the frequency of this rhythmic activity.These data suggest the presence of a Ca2+ entry pathway in mammalian sensory neurones that is distinct from VOCCs and is regulated by ryanodine-sensitive Ca2+ stores. This pathway participates in refilling intracellular Ca2+ stores and maintaining [Ca2+]i oscillations and thus controls the balance between intra- and extracellular Ca2+ reservoirs in resting DRG neurones.
机译:储存操作的,电压无关的Ca2 +通道通过细胞内Ca2 +储存的耗竭而激活,并在静息膜电位下介导Ca2 +流入非兴奋性细胞。我们使用微荧光法,膜片钳和Mn2 +猝灭技术研究了原代培养的大鼠背根神经节(DRG)神经元中存在类似机制的可能性。膜电位。重新充填过程需要细胞外Ca2 +,被2mM Ni2 +阻断,并由-55至-80mV的膜超极化促进,这表明Ca2 +大量涌入。 Ca2 +的流入不受电压操纵的Ca2 +通道(VOCC)拮抗剂尼卡地平(10μM),尼莫地平(10μm)或ω-革兰毒素SIA(1μm)的影响。在自由介质中,返回到2 mM外部Ca2 +会导致明显的[Ca2 +] i过冲,表明对Ca2 +的渗透性增加。 Ca2 +储量的减少也使Mn2 +流入速度增加了2倍。 [Ca2 +] i过冲和Mn2 +的进入均受到Ni2 +的抑制,但不受VOCC拮抗剂的抑制。咖啡因可引起周期性的Ca2 +释放,并重新吸收入对精氨酸敏感的存储区。 [Ca2 +] i振荡可通过去除细胞外Ca2 +或添加Ni2 +来阻止,但不受VOCC拮抗剂的影响。超极化增加了这种节律性活动的频率。这些数据表明,哺乳动物的感觉神经元中存在Ca2 +进入途径,该途径不同于VOCC,并且受瑞丹碱敏感的Ca2 +存储区调节。该途径参与补充细胞内Ca 2+的储存并维持[Ca 2+] i振荡,从而控制静止DRG神经元中细胞内和细胞外Ca 2+储库之间的平衡。

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