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首页> 外文期刊>Learning & memory >Differential role of inhibition in habituation of two independent afferent pathways to a common motor output
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Differential role of inhibition in habituation of two independent afferent pathways to a common motor output

机译:抑制作用在习惯于两个独立的传入途径至共同运动输出的习惯中的差异作用

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摘要

Many studies of the neural mechanisms of learning have focused oil habituation, a simple form of learning in which a response decrements with repeated stimulation. In the siphon-elicited siphon withdrawal reflex (S-SWR) of the marine Mollusk Aplysia, the prevailing view is that homosynaptic depression of primary sensory afferents underlies short-term habituation. Here we examined whether this mechanism is also utilized in habituation of the tail-elicited siphon withdrawal reflex (T-SWR), which is triggered by an independent, polysynaptic afferent pathway that converges onto the same siphon motor neurons (MNs). By using semi-intact preparations in which tail and/or siphon input to siphon MNs could be measured, we found that repeated tail stimuli administered in the presence of a reversible conduction block of the nerves downstream of the tail sensory neurons (SNs) completely abolished the induction of habituation. Subsequent retraining revealed no evidence of savings, indicating that the tail SNs and their immediate interneuronal targets are not the locus of plasticity underlying T-SWR habituation. The networks closely associated with the siphon MNs are modulated by cholinergic inhibition. We next examined the effects of network disinhibition on S-SWR and T-SWR habituation using an Ach receptor antagonist d-tubocurarine. We found that the resulting network disinhibition disrupted T-SWR, but not S-SWR, habituation. Indeed, repeated tail Stimulation in the presence of d-tubocurarine resulted in an initial enhancement in responding. Lastly, we tested whether habituation of T-SWR generalized to S-SWR and found that it did not. Collectively, these data indicate that (1) unlike S-SWR, habituation of T-SWR does not involve homosynaptic depression of SNs; and (2) the sensitivity of T-SWR habituation to network disinhibition is consistent with all interneuronal plasticity mechanism that is unique to the T-SWR circuit, since it does not alter S-SWR.
机译:学习的神经机制的许多研究都集中在油的习惯上,这是一种简单的学习形式,其中随着反复刺激,反应逐渐减少。在海洋软体动物海蛇的虹吸引起的虹吸撤退反射(S-SWR)中,普遍的观点是初级感觉传入感受器的突触抑制是短期习性的基础。在这里,我们检查了这种机制是否也用于尾部引起的虹吸撤回反射(T-SWR)的适应,这是由一个独立的,多突触传入途径汇聚到相同的虹吸运动神经元(MNs)上触发的。通过使用可以测量到虹吸MNs的尾巴和/或虹吸输入的半完整制剂,我们发现在存在尾部感觉神经元(SN)下游神经的可逆传导阻滞的情况下重复给予尾巴刺激诱导习惯化。随后的再培训没有发现节省的证据,表明尾部SN及其直接的神经内靶标不是T-SWR适应性潜在的可塑性源。与虹吸MNs紧密相关的网络通过胆碱能抑制来调节。接下来,我们使用Ach受体拮抗剂d-微管尿素检查了网络去抑制作用对S-SWR和T-SWR适应的影响。我们发现,由此产生的网络抑制会扰乱T-SWR,但不会扰乱S-SWR的习惯。确实,在存在d-微管尿素的情况下反复进行尾巴刺激会导致反应能力得到初步增强。最后,我们测试了T-SWR的习惯化是否推广到S-SWR,发现它没有。总的来说,这些数据表明:(1)与S-SWR不同,T-SWR的习惯化不涉及SN的同突触抑制。 (2)T-SWR习惯化对网络去抑制的敏感性与T-SWR电路特有的所有神经元可塑性机制一致,因为它不会改变S-SWR。

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