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加州侧鳃海蛞蝓脑旁进食指令中间神经元突触输入的组织。III. 经验诱导的改变。

Organization of synaptic inputs to paracerebral feeding command interneurons of Pleurobranchaea californica. III. Modifications induced by experience.

作者信息

Davis W J, Gillette R, Kovac M P, Croll R P, Matera E M

出版信息

J Neurophysiol. 1983 Jun;49(6):1557-72. doi: 10.1152/jn.1983.49.6.1557.

Abstract

Phasic paracerebral feeding command interneurons (PCP's) were studied in whole-animal preparations of Pleurobranchaea drawn from four populations with different behavioral histories: food avoidance conditioned, yoked controls, food satiated, and naive. PCP responses to chemosensory food stimuli (liquefied squid) and mechanosensory touch stimuli (tactile stimulation of anterior and posterior structures) were recorded intracellularly, scored blind, and compared quantitatively across the four populations. PCP's from avoidance-conditioned specimens (10, 18, 19) showed decreased excitatory and increased inhibitory responses to food and touch in comparison with naive (untrained) specimens. Control animals did not show these effects. PCP's from satiated specimens showed decreased excitatory and increased inhibitory responses to food and touch in comparison with PCP's from control, naive, and conditioned specimens. Inhibitory postsynaptic potentials (IPSPs) induced in PCP's of conditioned and satiated specimens by food and touch are indistinguishable in amplitude and waveform from IPSPs produced in the same PCP's by the previously described cyclic inhibitory network (CIN; Ref. 13). In addition, tonic paracerebral neurons (PCT's) that lack input from the CIN, are not inhibited but rather are excited in trained and satiated animals. Therefore the inhibitory responses to food and touch by PCP's of conditioned and satiated specimens appear to be mediated by the CIN. This study demonstrates that associative and nonassociative processes (learning and food satiation, respectively) manifest similarly at the level of command interneurons. The findings furnish a neurophysiological explanation for behavioral motivation in Pleurobranchaea, namely, modulation of the balance of excitation/inhibition in command neurons controlling the corresponding behavior. A cellular model of food avoidance learning and food satiation is formulated to account for these data, based on the identified neural circuitry of the paracerebral command system (15, 17).

摘要

在取自具有不同行为历史的四个群体的侧鳃海蛞蝓全动物标本中,研究了阶段性脑旁进食指令中间神经元(PCP):食物回避条件反射组、配对对照组、食物饱腹组和未训练组。细胞内记录了PCP对化学感觉食物刺激(液化鱿鱼)和机械感觉触觉刺激(前后结构的触觉刺激)的反应,进行盲法评分,并在这四个群体中进行定量比较。与未训练(未接触过食物)的标本相比,来自回避条件反射标本(10只、18只、19只)的PCP对食物和触觉的兴奋性反应降低,抑制性反应增加。对照动物未表现出这些效应。与来自对照、未训练和条件反射标本的PCP相比,来自饱腹标本的PCP对食物和触觉的兴奋性反应降低,抑制性反应增加。食物和触觉在条件反射和饱腹标本的PCP中诱发的抑制性突触后电位(IPSP)在幅度和波形上与先前描述的循环抑制网络(CIN;参考文献13)在相同PCP中产生的IPSP无法区分。此外,缺乏CIN输入的紧张性脑旁神经元(PCT)在经过训练和饱腹的动物中不会被抑制,反而会被兴奋。因此,条件反射和饱腹标本的PCP对食物和触觉的抑制性反应似乎是由CIN介导的。这项研究表明,联想和非联想过程(分别为学习和食物饱腹)在指令中间神经元水平上表现相似。这些发现为侧鳃海蛞蝓的行为动机提供了神经生理学解释,即控制相应行为的指令神经元中兴奋/抑制平衡的调节。基于已确定的脑旁指令系统的神经回路(15, 17),构建了一个食物回避学习和食物饱腹的细胞模型来解释这些数据。

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