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眼斑电鳐中的非特异性离子通道与突触小泡融合。

The non-specific ion channel in Torpedo ocellata fused synaptic vesicles.

作者信息

Yakir N, Rahamimoff R

机构信息

Department of Physiology, Hebrew University-Hadassah Medical School, Jerusalem, Israel.

出版信息

J Physiol. 1995 Jun 15;485 ( Pt 3)(Pt 3):683-97. doi: 10.1113/jphysiol.1995.sp020762.

Abstract
  1. Synaptic vesicles were isolated and fused into large structures with a diameter of more than 20 microns to characterize their ionic channels. The 'cell'-attached and inside-out configurations of the patch clamp technique were used. 2. Two types of ion channels were most frequently observed: a low conductance chloride channel and a high conductance non-specific channel. 3. The non-specific channel has a main conducting state and a substate. The main conducting state has a slope conductance of 246 +/- 15 pS (+/- S.E.M., n = 15), in the presence of different combinations of KCl and potassium glutamate. 4. From the reversal potentials of the current-voltage (I-V) relation, it was concluded that this channel conducts both Cl- and K+. 5. The non-specific channel is highly voltage dependent: under steady-state voltages it has a high open probability near 0 mV and does not inactivate; when the membrane is hyperpolarized (pipette side more positive), the open probability decreases dramatically. 6. Voltage pulses showed that upon hyperpolarization (from holding potentials between -20 and + 20 mV), the channels deactivated; when the membrane was stepped back to the holding potential, the channels reactivated rapidly. 7. In a number of experiments, when the pipette side was made more negative than the bath, the open probability also decreased. 8. Frequently, a substate with a conductance of about 44 +/- 4% (+/- S.E.M., n = 3) of the main state was detected. 9. We speculate that this non-specific ion channel may have different roles at the various stages of the life cycle of the synaptic vesicle. When the synaptic vesicle is an intracellular structure, it might help its transmitter-concentrating capacity by dissipating the polarization. After fusion with the surface membrane, it might constitute an additional conductance pathway, taking part in frequency modulation of synaptic transmission.
摘要
  1. 分离突触小泡并将其融合成直径超过20微米的大结构,以表征其离子通道。采用膜片钳技术的“细胞贴附”和“内面向外”配置。2. 最常观察到两种类型的离子通道:低电导氯离子通道和高电导非特异性通道。3. 非特异性通道有一个主要导通状态和一个子状态。在存在不同组合的氯化钾和谷氨酸钾的情况下,主要导通状态的斜率电导为246±15 pS(±标准误,n = 15)。4. 从电流-电压(I-V)关系的反转电位得出结论,该通道对氯离子和钾离子都有导通作用。5. 非特异性通道高度依赖电压:在稳态电压下,它在0 mV附近有较高的开放概率且不会失活;当膜超极化时(移液管侧更正),开放概率急剧下降。6. 电压脉冲显示,在超极化时(从-20到+20 mV的保持电位),通道失活;当膜回到保持电位时,通道迅速重新激活。7. 在许多实验中,当移液管侧比浴液更负时,开放概率也会降低。8. 经常检测到一个电导约为主状态44±4%(±标准误,n = 3)的子状态。9. 我们推测,这种非特异性离子通道可能在突触小泡生命周期的各个阶段发挥不同作用。当突触小泡是细胞内结构时,它可能通过消除极化来帮助其递质浓缩能力。与表面膜融合后,它可能构成一个额外的电导途径,参与突触传递的频率调制。

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