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蝗虫非爆发性局部中间神经元膜中的电压依赖性非线性及其对突触整合的意义。

Voltage-dependent nonlinearities in the membrane of locust nonspiking local interneurons, and their significance for synaptic integration.

作者信息

Laurent G

机构信息

Department of Zoology, University of Cambridge, England.

出版信息

J Neurosci. 1990 Jul;10(7):2268-80. doi: 10.1523/JNEUROSCI.10-07-02268.1990.

Abstract

Some aspects of the electronic and active membrane properties of nonspiking local interneurons were studied in isolated locust thoracic ganglia, using the switched current- and voltage-clamp techniques in neuropilar recordings. The average transmembrane potential (Vr) of the interneurons was -58 +/- 6mV (n = 85), and the input resistance (in the linear region of the current-voltage curve) was 16.5 +/- 8 M omega (n = 19, range 8 to 32 M omega). The membrane and equalizing time constants were estimated from charging curves evoked by the injection of low density hyperpolarizing current pulses from about -80 mV, i.e., from voltages in the linear region of the I-V curve. The curves yielded 2 time constants (tau m and tau l) whose average values were 33.2 +/- 9 msec and 3.3 +/- 1 msec (n = 18), respectively. The mean specific membrane resistance is therefore about 33 k omega.cm2, assuming that the membrane capacitance is ca. 1 microF.cm-2. An outward rectification was always observed upon depolarization from potentials more negative than Vr and was accompanied by a decrease in input resistance and membrane time constant. The "resting" membrane, for example, had a time constant of 26.4 +/- 8 msec (n = 31). This outward rectification was due to at least 2 conductances with different inactivation kinetics, similar to the transient "A" and "delayed-rectifier" potassium conductances. No inward rectification was ever observed upon injection of hyperpolarizing current. In about 60% of the recordings, an active and TTX-resistant depolarizing process could be evoked by rapid depolarization around Vr. The voltage-dependent properties of the membrane of the nonspiking local interneurons had dramatic effects on the shape and time course of natural or evoked unitary PSPs. The half-width of EPSPs, for example, decreased by a factor of 7.5 if the membrane potential was shifted from -93 to -50 mV. When the membrane potential of an interneuron was altered with a triangular current waveform, the reduction of tonically occurring IPSPs depended more on the sign and rate of the induced voltage change than on the absolute transmembrane potential. For 2 identical instantaneous values of membrane potential, for example, the reduction of the PSPs was greater during the depolarizing phase than during the hyperpolarizing phase of the current waveform. The possible nature of the active membrane conductances underlying the nonlinear electrical behavior of the membrane is discussed, together with their functional significance for local circuit synaptic integration.

摘要

采用切换电流钳和电压钳技术,在离体蝗虫胸神经节中研究了非爆发性局部中间神经元的电特性和活性膜特性的某些方面。中间神经元的平均跨膜电位(Vr)为-58±6mV(n = 85),输入电阻(在电流-电压曲线的线性区域)为16.5±8MΩ(n = 19,范围8至32MΩ)。膜时间常数和平衡时间常数是根据从约-80mV(即I-V曲线线性区域的电压)注入低密度超极化电流脉冲诱发的充电曲线估算的。这些曲线产生了2个时间常数(τm和τl),其平均值分别为33.2±9毫秒和3.3±1毫秒(n = 18)。假设膜电容约为1μF/cm²,因此平均比膜电阻约为33kΩ·cm²。当从比Vr更负的电位去极化时,总是观察到外向整流,并且伴随着输入电阻和膜时间常数的降低。例如,“静息”膜的时间常数为26.4±8毫秒(n = 31)。这种外向整流至少归因于2种具有不同失活动力学的电导,类似于瞬时“A”和“延迟整流”钾电导。注入超极化电流时从未观察到内向整流。在大约60%的记录中,通过在Vr附近快速去极化可以诱发一个活性且对TTX有抗性的去极化过程。非爆发性局部中间神经元膜的电压依赖性特性对自然或诱发的单位PSP的形状和时间进程有显著影响。例如,如果膜电位从-93mV转变为-50mV,EPSP的半高宽会减小7.5倍。当用三角电流波形改变中间神经元的膜电位时,持续性出现的IPSP的减小更多地取决于诱发电压变化的符号和速率,而不是绝对跨膜电位。例如,对于2个相同的膜电位瞬时值,在电流波形的去极化阶段PSP的减小比超极化阶段更大。讨论了膜非线性电行为背后活性膜电导的可能性质,以及它们对局部电路突触整合的功能意义。

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