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两栖动物(海蟾蜍)神经肌肉接头处的量子分泌和神经末梢电缆特性。

Quantal secretion and nerve-terminal cable properties at neuromuscular junctions in an amphibian (Bufo marinus).

作者信息

Macleod G T, Farnell L, Gibson W G, Bennett M R

机构信息

The Neurobiology Laboratory, Institute for Biomedical Research, The Department of Physiology and The School of Mathematics and Statistics, University of Sydney, New South Wales 2006, Australia.

出版信息

J Neurophysiol. 1999 Mar;81(3):1135-46. doi: 10.1152/jn.1999.81.3.1135.

Abstract

The effect of a conditioning depolarizing current pulse (80-200 micros) on quantal secretion evoked by a similar test pulse at another site was examined in visualized motor-nerve terminal branches of amphibian endplates (Bufo marinus). Tetrodotoxin (200 nM) and cadmium (50 microM) were used to block voltage-dependent sodium and calcium conductances. Quantal release at the test electrode was depressed at different distances (28-135 microm) from the conditioning electrode when the conditioning and test pulses were delivered simultaneously. This depression decreased when the interval between conditioning and test current pulses was increased, until, at an interval of approximately 0.25 ms, it was negligible. At no time during several thousand test-conditioning pairs, for electrodes at different distances apart (28-135 microm) on the same or contiguous terminal branches, did the electrotonic effects of quantal release at one electrode produce quantal release at the other. Analytic and numerical solutions were obtained for the distribution of transmembrane potential at different sites along terminal branches of different lengths for current injection at a point on a terminal branch wrapped in Schwann cell, in the absence of active membrane conductances. Solutions were also obtained for the combined effects of two sites of current injection separated by different time delays. This cable model shows that depolarizing current injections of a few hundred microseconds duration produce hyperpolarizations at approximately 30 microm beyond the site of current injection, with these becoming larger and occurring at shorter distances the shorter the terminal branch. Thus the effect of a conditioning depolarizing pulse at one site on a subsequent test pulse at another more than approximately 30 microm away is to substantially decrease the absolute depolarization produced by the latter, provided the interval between the pulses is less than a few hundred microseconds. It is concluded that the passive cable properties of motor nerve terminal branches are sufficient to explain the effects on quantal secretion by a test electrode depolarization of current injections from a spatially removed conditioning electrode.

摘要

在海蟾蜍两栖类终板的可视化运动神经末梢分支中,研究了条件去极化电流脉冲(80 - 200微秒)对另一部位类似测试脉冲诱发的量子分泌的影响。使用河豚毒素(200 nM)和镉(50 microM)来阻断电压依赖性钠和钙电导。当同时施加条件脉冲和测试脉冲时,在距条件电极不同距离(28 - 135微米)处,测试电极处的量子释放受到抑制。当条件电流脉冲和测试电流脉冲之间的间隔增加时,这种抑制作用减弱,直到间隔约0.25毫秒时,抑制作用可忽略不计。在数千对测试 - 条件脉冲期间,对于同一或相邻末梢分支上不同距离(28 - 135微米)的电极,一个电极处量子释放的电紧张效应从未在另一个电极处产生量子释放。对于包裹在施万细胞中的末梢分支上某一点注入电流时,不同长度末梢分支不同部位跨膜电位的分布,在无主动膜电导的情况下,获得了解析解和数值解。还获得了两个注入电流部位以不同时间延迟分隔的联合效应的解。该电缆模型表明,持续几百微秒的去极化电流注入在电流注入部位以外约30微米处产生超极化,末梢分支越短,超极化越大且发生距离越短。因此,如果脉冲之间的间隔小于几百微秒,一个部位的条件去极化脉冲对另一距离超过约30微米处的后续测试脉冲的影响是大幅降低后者产生的绝对去极化。结论是,运动神经末梢分支的被动电缆特性足以解释空间上分离的条件电极注入电流对测试电极去极化时量子分泌的影响。

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