Abrams T W
Cell Mol Neurobiol. 1985 Jun;5(1-2):123-45. doi: 10.1007/BF00711089.
In studying the classical conditioning of the siphon withdrawal reflex in Aplysia, we have identified a neuronal mechanism that plays an important role in this conditioning: activity-dependent presynaptic facilitation. This review describes our analysis of the cellular basis of this associative mechanism. During the conditioning of the withdrawal reflex, the unconditioned stimulus, a tail shock, produces presynaptic facilitation of synaptic transmission from the siphon sensory neurons in the conditioned stimulus pathway. The facilitation is enhanced if a sensory neuron has fired action potentials just prior to receiving facilitatory input, as occurs during training when the conditioned stimulus precedes the unconditioned stimulus. This activity-dependent enhancement of presynaptic facilitation provides a mechanism for the temporal specificity in conditioning of the reflex. Activity-dependent facilitation appears to involve the same cyclic AMP (cAMP)-dependent cascade that underlies presynaptic facilitation in these neurons in the absence of paired spike activity. Our evidence suggests that it is the transient elevation of intracellular Ca2+ that is responsible for the enhancement of the facilitation response by paired spike activity. Moreover, our preliminary results indicate that Ca2+/calmodulin is able to potentiate the activation of adenylate cyclase in Aplysia neurons by facilitatory transmitter. Thus, the dual activation of the calmodulin-dependent cyclase by Ca2+ and transmitter may give this enzyme an important associative role in learning. In the conclusion, the possible phylogenetic generality of this associative mechanism is discussed as well as its possible role in activity-dependent processes in neuronal development.
在研究海兔虹吸管退缩反射的经典条件作用时,我们发现了一种在这种条件作用中起重要作用的神经元机制:活动依赖型突触前易化。本综述描述了我们对这种联想机制细胞基础的分析。在退缩反射的条件作用过程中,非条件刺激,即尾部电击,会使条件刺激通路中来自虹吸管感觉神经元的突触传递产生突触前易化。如果感觉神经元在接受易化输入之前刚刚发放动作电位,这种易化就会增强,就像在训练中条件刺激先于非条件刺激出现时那样。这种活动依赖型突触前易化的增强为反射条件作用中的时间特异性提供了一种机制。活动依赖型易化似乎涉及与这些神经元在没有配对峰电位活动时突触前易化相同的环磷酸腺苷(cAMP)依赖级联反应。我们的证据表明,细胞内Ca2+的短暂升高是配对峰电位活动增强易化反应的原因。此外,我们的初步结果表明,Ca2+/钙调蛋白能够增强易化递质对海兔神经元腺苷酸环化酶的激活作用。因此,Ca2+和递质对钙调蛋白依赖性环化酶的双重激活可能赋予这种酶在学习中重要的联想作用。在结论部分,讨论了这种联想机制可能的系统发生普遍性及其在神经元发育中活动依赖过程中的可能作用。