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首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Voltage-Mediated Control of Spontaneous Bundle Oscillations in Saccular Hair Cells
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Voltage-Mediated Control of Spontaneous Bundle Oscillations in Saccular Hair Cells

机译:电压介导的囊状发毛细胞自发束振荡控制

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Hair cells of the vertebrate vestibular and auditory systems convert mechanical inputs into electrical signals that are relayed to the brain. This transduction involves mechanically gated ion channels that open following the deflection of mechanoreceptive hair bundles that reside on top of these cells. The mechano-electrical transduction includes one or more active feedback mechanisms to keep the mechanically gated ion channels in their most sensitive operating range. Coupling between the gating of the mechanosensitive ion channels and this adaptation mechanism leads to the occurrence of spontaneous limit-cycle oscillations, which indeed have been observed in vitro in hair cells from the frog sacculus and the turtle basilar papilla. We obtained simultaneous optical and electrophysiological recordings from bullfrog saccular hair cells with such spontaneously oscillating hair bundles. The spontaneous bundle oscillations allowed us to characterize several properties of mechano-electrical transduction without artificial loading the hair bundle with a mechanical stimulus probe. We show that the membrane potential of the hair cell can modulate or fully suppress innate oscillations, thus controlling the dynamic state of the bundle. We further demonstrate that this control is exerted by affecting the internal calcium concentration, which sets the resting open probability of the mechanosensitive channels. The auditory and vestibular systems could use the membrane potential of hair cells, possibly controlled via efferent innervation, to tune the dynamic states of the cells.
机译:脊椎动物前庭和听觉系统的毛细胞将机械输入转换为转发到大脑的电信号。这种转导涉及机械门控离子通道,其在驻留在这些细胞顶部的机械毛发束的偏转之后开放。机械电转换包括一个或多个有源反馈机制,以保持机械门控离子通道在其最敏感的操作范围内。机械敏感离子通道的栅极与该适配机构之间的耦合导致发生自发极限循环振荡的发生,其在来自青蛙墓穴和龟底乳头的毛细胞中体外观察到。我们通过如此自发振荡毛束从牛蛙囊状细胞中获得同时光学和电生理学记录。自发束振荡允许我们在没有人工加载发射刺激探针的情况下表征机械转导的若干特性。我们表明毛孔的膜电位可以调节或完全抑制先天振荡,从而控制束的动态状态。我们进一步证明通过影响内部钙浓度来施加该控制,该控制设定机械敏感通道的静止开放概率。听觉和前庭系统可以使用毛细胞的膜电位,可能通过迁移的支配控制,调整细胞的动态状态。

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