Division of Biology, California Institute of Technology, Pasadena, California 91125, USA.
Nature. 2012 Jan 25;482(7383):47-52. doi: 10.1038/nature10776.
Mushroom bodies are a well-known site for associative learning in insects. Yet the precise mechanisms that underlie plasticity there and ensure their specificity remain elusive. In locusts, the synapses between the intrinsic mushroom body neurons and their postsynaptic targets obey a Hebbian spike-timing-dependent plasticity (STDP) rule. Although this property homeostatically regulates the timing of mushroom body output, its potential role in associative learning is unknown. Here we show in vivo that pre-post pairing causing STDP can, when followed by the local delivery of a reinforcement-mediating neuromodulator, specify the synapses that will undergo an associative change. At these synapses, and there only, the change is a transformation of the STDP rule itself. These results illustrate the multiple actions of STDP, including a role in associative learning, despite potential temporal dissociation between the pairings that specify synaptic modification and the delivery of reinforcement-mediating neuromodulator signals.
蘑菇体是昆虫进行联想学习的一个众所周知的部位。然而,支持可塑性的精确机制以及确保其特异性的机制仍然难以捉摸。在蝗虫中,内在蘑菇体神经元与其突触后靶标之间的突触遵循赫伯氏尖峰时间依赖性可塑性(STDP)规则。尽管这种特性在体内对蘑菇体输出的时间进行了自我调节,但它在联想学习中的潜在作用尚不清楚。在这里,我们在体内显示,导致 STDP 的预-后配对,当随后局部递增强化调节神经调质时,可以指定将经历联想变化的突触。在这些突触中,而且只有在这些突触中,变化是 STDP 规则本身的转变。这些结果说明了 STDP 的多种作用,包括在联想学习中的作用,尽管在指定突触修饰的配对和递增强化调节神经调质信号之间可能存在时间分离。