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龟毛细胞机械转导通道的钙渗透及其与内淋巴成分的关系。

Calcium permeation of the turtle hair cell mechanotransducer channel and its relation to the composition of endolymph.

作者信息

Ricci A J, Fettiplace R

机构信息

Department of Neurophysiology, University of Wisconsin Medical School, Madison 53706, USA.

出版信息

J Physiol. 1998 Jan 1;506 ( Pt 1)(Pt 1):159-73. doi: 10.1111/j.1469-7793.1998.159bx.x.

Abstract
  1. Recordings of mechanoelectrical transducer currents were combined with calcium imaging of hair bundles in turtle auditory hair cells located near the high-frequency end of the cochlea. The external face of the hair bundles was perfused with a range of Ca2+ concentrations to study the quantitative relationship between Ca2+ influx and transducer adaptation. 2. With Na+ as the monovalent ion, the peak amplitude of the transducer current decreased monotonically as the external [Ca2+] was raised from 25 microns to 20 mm. When Na+ was replaced with the impermeant Tris the transducer current increased with external [Ca2+]. These results indicate that Ca2+ can both permeate and block the transducer channels. The Ca2+ concentration for half-block of the monovalent current was 1 mm. 3. To quantify the Ca2+ influx, the fraction of transducer current carried by Ca2+ was measured using the change in bundle fluorescence in cells loaded with 1 mm Calcium Green-1. The fluorescence change was calibrated by substituting an impermeable monovalent ion to render Ca2+ the sole charge carrier. 4. In the presence of Na+, the fractional Ca2+ current was approximately 10% in 50 microns Ca2+, a concentration similar to that in endolymph, which bathes the hair bundles in vivo. The amount of Ca2+ entering was dependent on the identity of the monovalent ion, and was larger with K+, suggesting that the transducer channel is a multi-ion pore. 5. Over a range of ionic conditions, the rate of transducer adaptation was proportional to Ca2+ influx indicating that adaptation is driven by a rise in intracellular [Ca2+]. 6. Shifts in the current-displacement function along the displacement axis in different external Ca2+ concentrations were predictable from variation in the resting Ca2+ influx. We suggest that changes in the resting open probability of the transducer channels adjust the entry of Ca2+ to keep its concentration constant at an internal site. 7. The results demonstrate that endolymph containing high K+, 50 microns Ca2+ and low Mg2+ concentrations, maximizes the transducer current while still allowing sufficient Ca2+ entry to drive adaptation. The hair cell mechanotransducer channel, in its permeation and block by Ca2+, shows behaviour similar to the voltage-gated Ca2+ channel and the cyclic nucleotide-gated channel.
摘要
  1. 机械电换能器电流记录与位于龟耳蜗高频端附近的听觉毛细胞毛束的钙成像相结合。毛束的外表面用一系列Ca2+浓度进行灌注,以研究Ca2+内流与换能器适应性之间的定量关系。2. 以Na+作为单价离子,随着外部[Ca2+]从25微米升高到20毫米,换能器电流的峰值幅度单调下降。当Na+被非渗透性的Tris取代时,换能器电流随外部[Ca2+]增加。这些结果表明Ca2+既能通透又能阻断换能器通道。单价电流半阻断的Ca2+浓度为1毫米。3. 为了量化Ca2+内流,使用加载1毫米钙绿-1的细胞中毛束荧光的变化来测量由Ca2+携带的换能器电流分数。通过替代非渗透性单价离子使Ca2+成为唯一的电荷载体来校准荧光变化。4. 在存在Na+的情况下,在50微米Ca2+中,Ca2+电流分数约为10%,该浓度与体内浸泡毛束的内淋巴中的浓度相似。进入的Ca2+量取决于单价离子的种类,并且用K+时更大,表明换能器通道是多离子孔。5. 在一系列离子条件下,换能器适应速率与Ca2+内流成正比,表明适应是由细胞内[Ca2+]升高驱动的。6. 在不同外部Ca2+浓度下,电流-位移函数沿位移轴的移动可根据静息Ca2+内流的变化预测。我们认为,换能器通道静息开放概率的变化会调节Ca2+的进入,以使其在内部位点的浓度保持恒定。7. 结果表明,含有高K+、50微米Ca2+和低Mg2+浓度的内淋巴能使换能器电流最大化,同时仍允许足够的Ca2+进入以驱动适应。毛细胞机械转导通道在其对Ca2+的通透和阻断方面表现出与电压门控Ca2+通道和环核苷酸门控通道相似的行为。

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