Marcus E A, Nolen T G, Rankin C H, Stopfer M, Carew T J
Department of Psychology, Yale University, New Haven, Connecticut 06520.
Experientia. 1988 May 15;44(5):415-23. doi: 10.1007/BF01940536.
A set of fundamental issues in neuroethology concerns the neural mechanisms underlying behavior and behavioral plasticity. We have recently analyzed these issues by combining a simple systems approach in the marine mollusc Aplysia with a developmental analysis aimed at examining the emergence and maturation of different forms of behavior and learning. We have focussed on two kinds of questions: 1) How are specific neural circuits developmentally assembled to mediate different types of behaviors? and 2) how is plasticity integrated with these circuits to give rise to different forms of learning? From our analysis of the development of learning and memory in Aplysia, several themes have emerged: 1) Different forms of learning emerge according to different developmental timetables. 2) Cellular analogs of learning have the same developmental timetables as their respective forms of behavioral learning. 3) An analysis of non-decremented responses prior to the emergence of sensitization reveals a novel inhibitory process on both behavioral and cellular levels. 4) Sensitization emerges simultaneously in diverse response systems, suggesting an underlying general process. 5) A widespread proliferation of central neurons occurs in the same developmental stage as the emergence of sensitization, raising the possibility that some aspect of the trigger for neuronal proliferation may also contribute to the expression of sensitization.
神经行为学中的一系列基本问题涉及行为及行为可塑性背后的神经机制。我们最近通过将海洋软体动物海兔的一种简单系统方法与旨在研究不同行为和学习形式的出现及成熟过程的发育分析相结合,对这些问题进行了分析。我们关注两类问题:1)特定神经回路在发育过程中是如何组装以介导不同类型行为的?2)可塑性如何与这些回路整合以产生不同形式的学习?从我们对海兔学习与记忆发育的分析中,出现了几个主题:1)不同形式的学习根据不同的发育时间表出现。2)学习的细胞类似物与其各自形式的行为学习具有相同的发育时间表。3)在敏化出现之前对非递减反应的分析揭示了行为和细胞水平上一种新的抑制过程。4)敏化在不同的反应系统中同时出现,表明存在一个潜在的一般过程。5)在与敏化出现相同的发育阶段,中枢神经元广泛增殖,这增加了神经元增殖触发因素的某些方面也可能有助于敏化表达的可能性。