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A single identified interneuron gates tail-shock induced inhibition in the siphon withdrawal reflex of Aplysia

机译:单个鉴定的神经元闸门尾部电击抑制海ly虹吸撤退反射

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摘要

The marine mollusc Aplysia has proven very useful for a mechanistic analysis of behavioral modification. Among the stimuli used to modify the behavior of Aplysia, a noxious stimulus, tail shock, is one of the most effective. In addition to the extensively analyzed facilitatory effects of tail shock, recent work has demonstrated that it also produces marked transient inhibition in reflex responses. Here we report that functional removal (by hyperpolarization or voltage clamp) of a single inhibitory interneuron, L16, can eliminate most, if not all, of the inhibition in the siphon withdrawal reflex circuit produced by tail shock. In addition, this interneuron is strongly activated by tail shock. Finally, direct intracellular activation of L16 does not, in itself, reliably produce inhibition, suggesting that L16 plays a gating role which is necessary for the expression of inhibition in the siphon withdrawal circuit. These results support the idea that behaviorally relevant neural modulation can be gated by a small number of neurons, in this case, by a single identified cell. Moreover, they indicate that in Aplysia, as in many other systems, the modulatory effects of a noxious stimulus are often funneled through a restricted neural locus before being distributed to the circuits actually responsible for generating the behavioral output.
机译:海洋软体动物Aplysia已被证明对行为改变的机理分析非常有用。在用于改变海兔行为的刺激中,有毒刺激(尾巴电击)是最有效的刺激之一。除了广泛分析的尾巴电击的促进作用外,最近的研究表明它还可以在反射反应中产生明显的瞬时抑制作用。在这里,我们报告说,单个抑制性中间神经元L16的功能去除(通过超极化或电压钳制)可以消除大部分(即使不是全部)由尾巴冲击产生的虹吸撤回反射回路的抑制作用。另外,该中间神经元被尾巴冲击强烈激活。最后,L16的直接细胞内激活本身并不能可靠地产生抑制作用,这表明L16发挥门控作用,这对于在虹吸撤回回路中表达抑制作用是必需的。这些结果支持这样的想法:行为相关的神经调节可以由少数神经元(在这种情况下,由单个识别的细胞)控制。而且,它们表明,在Aplysia中,像在许多其他系统中一样,有害刺激的调节作用通常在分配给实际负责产生行为输出的电路之前,通过受限的神经源转移。

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