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毒扁豆碱延长了海兔抑制性突触后电流衰减的基本事件。

Physostigmine prolongs the elementary event underlying decay of inhibitory postsynaptic currents in Aplysia.

作者信息

White R L, Gardner D

出版信息

J Neurosci. 1983 Dec;3(12):2607-13. doi: 10.1523/JNEUROSCI.03-12-02607.1983.

Abstract

Inhibitory postsynaptic currents (IPSCs) recorded at cholinergic synapses between identified neurons of the buccal ganglia of Aplysia decay exponentially. IPSC decay has been ascribed to a receptor-channel-dependent kinetic process, rather than to changes in subsynaptic acetylcholine (ACh) concentration, but is prolonged by the anticholinesterase eserine. Our data are consistent with a direct effect of 1.6 X 10(-4) M eserine on an elementary channel process. IPSC decay remains single exponential during eserine prolongation, suggesting that eserine slows the kinetic process responsible for decay, rather than substituting an additional kinetic process. In either control sea water or eserine, noise spectra computed from currents induced by pressure ejection of ACh are fitted by the sum of two Lorentzians. The slow corner frequency f1 is reduced from 6.3 to 3.5 Hz by eserine, consistent with a direct eserine action on receptor-channel kinetics, whereas apparent single-channel conductance was unchanged. Both IPSCs and ACh noise recorded in the same cells were comparably slowed by eserine. In eserine, decay time constant tau agreed with noise f1; however, tau and f1 in control sea water differed by 31%. The discrepancy may be accounted for by invoking an additional component to the recorded noise spectra, perhaps produced by synaptically active choline. In addition to the direct effect on kinetics, prolonged exposure to eserine produces a slow extra component to the IPSC decay tail.

摘要

在海兔口侧神经节中,已鉴定神经元之间的胆碱能突触处记录到的抑制性突触后电流(IPSCs)呈指数衰减。IPSC衰减归因于受体通道依赖性动力学过程,而非突触下乙酰胆碱(ACh)浓度的变化,但抗胆碱酯酶毒扁豆碱可延长其衰减时间。我们的数据与1.6×10⁻⁴ M毒扁豆碱对基本通道过程的直接作用一致。在毒扁豆碱延长衰减时间的过程中,IPSC衰减仍保持单指数形式,这表明毒扁豆碱减慢了负责衰减的动力学过程,而非替代了另一种动力学过程。在对照海水或毒扁豆碱中,由ACh压力喷射诱导的电流计算得到的噪声谱均由两个洛伦兹函数之和拟合。毒扁豆碱使慢角频率f1从6.3 Hz降至3.5 Hz,这与毒扁豆碱对受体通道动力学的直接作用一致,而表观单通道电导未发生变化。在同一细胞中记录的IPSCs和ACh噪声均被毒扁豆碱同等程度地减慢。在毒扁豆碱中,衰减时间常数tau与噪声f1一致;然而,对照海水中的tau和f1相差31%。这种差异可能是由于记录的噪声谱中存在额外成分,或许是由突触活性胆碱产生的。除了对动力学的直接影响外,长时间暴露于毒扁豆碱会使IPSC衰减尾部产生一个缓慢的额外成分。

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