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从龟耳蜗分离出的毛细胞中膜特性的变化。

Variation of membrane properties in hair cells isolated from the turtle cochlea.

作者信息

Art J J, Fettiplace R

机构信息

Physiological Laboratory, University of Cambridge.

出版信息

J Physiol. 1987 Apr;385:207-42. doi: 10.1113/jphysiol.1987.sp016492.

DOI:10.1113/jphysiol.1987.sp016492
PMID:2443666
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1192345/
Abstract
  1. Hair cells were enzymatically isolated from identified regions of the turtle basilar papilla and studied with the patch-electrode technique. The experimental aim was to relate the resonance properties seen during current injection to the membrane currents measured in the same cell under whole-cell voltage clamp. 2. Solitary hair cells had resting potentials of about -50 mV, and produced a damped oscillation in membrane potential at the onset and termination of a small current step; the resonant frequency varied from 9 to 350 Hz between cells, and was correlated with the region of papilla from which a cell had been isolated. The inferred frequency map was consistent with the tonotopic arrangement described previously in the intact papilla. 3. Depolarizations from the resting potential under voltage clamp activated a large net outward current with a steep voltage dependence, and the steady-state current-voltage relationship was strongly rectified about the resting potential. Input resistances tended to be smaller in cells with higher resonant frequencies, although there was no concurrent variation in membrane area as inferred from the cell capacitance. 4. The kinetics of the outward current evoked by a small depolarizing step depended upon the resonant frequency, fo, of the hair cell, and were slower in low-frequency cells. On repolarization to the resting potential the current decayed exponentially with a time constant that changed from 150 ms in the lowest-frequency cell to less than 1 ms in the highest-frequency one. The time constant was approximately proportional to 1/f0(2). 5. Following repolarization to different membrane potentials, the tail current was found to reverse around -80 mV, indicating that the outward current was due mainly to K+. 6. The outward current was abolished by extracellular application of 25 mM-tetraethylammonium chloride (TEA), or on exchange of Cs+ for K+ in the intracellular medium filling the recording electrode, each experiment supporting the contention that K+ is the major current carrier. Such treatments also removed the oscillations in membrane potential evoked by imposed current steps. 7. Addition of TEA or intracellular perfusion with Cs+ also revealed a fast inward current with an ionic sensitivity consistent with its being carried by Ca2+. Like the K+ current, the Ca2+ current was activated by small depolarization from the resting potential, and over this voltage range it was about five to ten times smaller than the K+ current. Its activation was more rapid than the fastest outward currents in high-frequency cells.(ABSTRACT TRUNCATED AT 400 WORDS)
摘要
  1. 从海龟基底乳头的特定区域酶解分离出毛细胞,并采用膜片电极技术进行研究。实验目的是将电流注入时观察到的共振特性与全细胞膜片钳记录下同一细胞中测量的膜电流联系起来。2. 单个毛细胞的静息电位约为 -50 mV,在小电流阶跃开始和结束时,膜电位会产生阻尼振荡;不同细胞间的共振频率在9至350 Hz之间变化,且与分离出该细胞的乳头区域相关。推断出的频率图与之前在完整乳头中描述的音频拓扑排列一致。3. 电压钳下从静息电位开始的去极化激活了一个大的净外向电流,该电流具有陡峭的电压依赖性,且稳态电流 - 电压关系在静息电位附近呈现强烈的整流特性。共振频率较高的细胞输入电阻往往较小,尽管从细胞电容推断膜面积并无同时变化。4. 小去极化阶跃诱发的外向电流动力学取决于毛细胞的共振频率f₀,低频细胞中的动力学过程较慢。复极化至静息电位时,电流以指数形式衰减,时间常数从最低频率细胞中的150 ms变化到最高频率细胞中的小于1 ms。时间常数大致与1/f₀²成正比。5. 复极化至不同膜电位后,发现尾电流在约 -80 mV处反转,表明外向电流主要由K⁺引起。6. 细胞外施加25 mM四乙铵氯化物(TEA)或在记录电极内充灌的细胞内介质中用Cs⁺替代K⁺后,外向电流被消除,每个实验都支持K⁺是主要电流载体的观点。这些处理也消除了施加电流阶跃诱发的膜电位振荡。7. 添加TEA或用Cs⁺进行细胞内灌流还揭示了一个快速内向电流,其离子敏感性表明该电流由Ca²⁺携带。与K⁺电流一样,Ca²⁺电流由从静息电位的小去极化激活,在此电压范围内,它比K⁺电流小约五到十倍。其激活比高频细胞中最快的外向电流更快。(摘要截选至400字)
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5241/1192345/858c7e63895a/jphysiol00535-0247-a.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5241/1192345/858c7e63895a/jphysiol00535-0247-a.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5241/1192345/858c7e63895a/jphysiol00535-0247-a.jpg

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