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Information processing by nonspiking interneurons: passive and active properties of dendritic membrane determine synaptic integration

机译:非尖峰中间神经的信息处理:树突状膜的被动和主动特性决定突触整合

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摘要

Nonspiking interneurons control activities of postsynaptic cells without generating action potentials in the central nervous system of many invertebrates. Physiological characteristics of their dendritic membrane have been analyzed in previous studies using single electrode current- and voltage-clamp techniques. We constructed a single compartment model of an identified nonspiking interneuron of crayfish. Experimental results allowed us to simulate how the passive and active properties of the dendritic membrane influence the integrative processing of synaptic inputs. The results showed that not only the peak amplitude but also the time course of synaptic potentials were dependent on the membrane potential level at which the synaptic activity was evoked. When the synaptic input came sequentially, each individual input was still discernible at depolarized levels at which the membrane time constant was short due to depolarization-dependent membrane conductances. In contrast, synaptic potentials merged with each other to develop a sustained potential at hyperpolarized levels where the membrane behaved passively. Thus, synaptic integration in a single nonspiking interneuron depends on the value of membrane potential at which it occurs. This probably reflects the temporal resolution required for specific types of information processing. (C) 2000 Elsevier Science Ireland Ltd. All rights reserved. [References: 23]
机译:不加尖刺的中间神经元可控制突触后细胞的活动,而不会在许多无脊椎动物的中枢神经系统中产生动作电位。在先前的研究中,已经使用单电极电流钳位和电压钳位技术分析了它们的树突膜的生理特性。我们构建了一个确定的小龙虾非突触中间神经元的单室模型。实验结果使我们能够模拟树突状膜的被动和主动特性如何影响突触输入的整合过程。结果表明,不仅峰值幅度而且突触电位的时间过程也取决于引起突触活性的膜电位水平。当突触输入顺序出现时,由于去极化相关的膜电导,在膜时间常数短的去极化水平下,每个单独的输入仍然是可辨别的。相反,突触电位彼此融合以在膜的被动行为的超极化水平上产生持续的电位。因此,单个非尖峰中间神经元中的突触整合取决于其发生时的膜电位值。这可能反映了特定类型的信息处理所需的时间分辨率。 (C)2000 Elsevier Science Ireland Ltd.保留所有权利。 [参考:23]

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