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非脉冲神经元中渐变信号的广泛传播。

Wide propagation of graded signals in nonspiking neurons.

机构信息

Departamento de Fisiología, Biología Molecular y Celular, Facultad de Ciencias Exactas y Naturales Universidad de Buenos Aires (UBA), Instituto de Fisiología, Biología Molecular y Neurociencias UBA-Consejo Nacional de Investigaciones Científicas y Técnicas, Buenos Aires, Argentina.

出版信息

J Neurophysiol. 2013 Feb;109(3):711-20. doi: 10.1152/jn.00934.2012. Epub 2012 Nov 14.

Abstract

Signal processing in neuritic trees is ruled by the concerted action of passive and active membrane properties that, together, determine the degree of electrical compartmentalization of these trees. We analyzed how active properties modulate spatial propagation of graded signals in a pair of nonspiking (NS) neurons of the leech. NS neurons present a very extensive neuritic tree that mediates the interaction with all the excitatory motoneurons in leech ganglia. NS cells express voltage-activated Ca(2+) conductances (VACCs) that, under certain experimental conditions, evoke low-threshold spikes. We studied the distribution of calcium transients in NS neurons loaded with fluorescent calcium probes in response to low-threshold spikes, electrical depolarizing pulses, and synaptic inputs. The three types of stimuli evoked calcium transients of similar characteristics in the four main branches of the neuron. The magnitude of the calcium transients evoked by electrical pulses was a graded function of the change in NS membrane potential and depended on the baseline potential level. The underlying VACCs were partially inactivated at rest and strongly inactivated at -20 mV. Stimulation of mechanosensory pressure cells evoked calcium transients in NS neurons whose amplitude was a linear function of the amplitude of the postsynaptic response. The results evidenced that VACCs aid an efficient propagation of graded signals, turning the vast neuritic tree of NS cells into an electrically compact structure.

摘要

树突中的信号处理受被动和主动膜特性的协同作用控制,这些特性共同决定了这些树突的电分隔程度。我们分析了活跃特性如何调节对水蛭无峰(NS)神经元对分级信号的空间传播。NS 神经元具有非常广泛的树突,介导与水蛭神经节中所有兴奋性运动神经元的相互作用。NS 细胞表达电压激活的 Ca(2+) 电导(VACC),在某些实验条件下,会引发低阈值尖峰。我们研究了在 NS 神经元中加载荧光钙探针以响应低阈值尖峰、电去极化脉冲和突触输入时钙瞬变的分布。这三种刺激在神经元的四个主要分支中引起了相似特征的钙瞬变。电脉冲引起的钙瞬变的幅度是 NS 膜电位变化的分级函数,并取决于基线电位水平。在休息时,基础 VACC 部分失活,在 -20 mV 时强烈失活。机械感觉压力细胞的刺激在 NS 神经元中引起钙瞬变,其幅度与突触后反应的幅度呈线性关系。结果表明,VACC 有助于分级信号的有效传播,使 NS 细胞的庞大树突成为电紧凑结构。

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