首页> 外文期刊>Frontiers in Cellular Neuroscience >Associative Memory Extinction Is Accompanied by Decayed Plasticity at Motor Cortical Neurons and Persistent Plasticity at Sensory Cortical Neurons
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Associative Memory Extinction Is Accompanied by Decayed Plasticity at Motor Cortical Neurons and Persistent Plasticity at Sensory Cortical Neurons

机译:联想记忆消退伴随着运动皮质神经元的可塑性下降和感觉皮质神经元的持久性可塑性

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Associative memory is essential for cognition, in which associative memory cells and their plasticity presumably play important roles. The mechanism underlying associative memory extinction vs. maintenance remains unclear, which we have studied in a mouse model of cross-modal associative learning. Paired whisker and olfaction stimulations lead to a full establishment of odorant-induced whisker motion in training day 10, which almost disappears if paired stimulations are not given in a week, and then recovers after paired stimulation for an additional day. In mice that show associative memory, extinction and recovery, we have analyzed the dynamical plasticity of glutamatergic neurons in layers II–III of the barrel cortex and layers IV–V of the motor cortex. Compared with control mice, the rate of evoked spikes as well as the amplitude and frequency of excitatory postsynaptic currents increase, whereas the amplitude and frequency of inhibitory postsynaptic currents (IPSC) decrease at training day 10 in associative memory mice. Without paired training for a week, these plastic changes are persistent in the barrel cortex and decayed in the motor cortex. If paired training is given for an additional day to revoke associative memory, neuronal plasticity recovers in the motor cortex. Our study indicates persistent neuronal plasticity in the barrel cortex for cross-modal memory maintenance as well as the dynamical change of neuronal plasticity in the motor cortex for memory retrieval and extinction. In other words, the sensory cortices are essential for long-term memory while the behavior-related cortices with the inability of memory retrieval are correlated to memory extinction.
机译:联想记忆对于认知至关重要,在联想中联想记忆细胞及其可塑性可能起重要作用。联想记忆消退与维持的潜在机制仍然不清楚,我们已经在跨模式联想学习的小鼠模型中对此进行了研究。晶须和嗅觉的配对刺激会导致在训练的第10天完全建立起由气味引起的晶须运动,如果一周内未给予配对刺激,则几乎消失,然后再配对刺激一天后恢复。在表现出联想记忆,灭绝和恢复能力的小鼠中,我们分析了桶状皮质II-I​​II层和运动皮质IV-V层中谷氨酸能神经元的动态可塑性。与对照组小鼠相比,在联想记忆小鼠中,在训练的第10天,诱发突触的频率以及兴奋性突触后电流的幅度和频率增加,而抑制性突触后电流(IPSC)的幅度和频率减小。如果不进行配对训练一周,这些塑性变化会在桶状皮质中持续存在,而在运动皮质中会减弱。如果再进行配对训练以解除联想记忆,则神经元可塑性在运动皮层中恢复。我们的研究表明,桶状皮层中持续的神经元可塑性可用于跨模态记忆维持,运动皮层中的神经元可塑性的动态变化可用于记忆恢复和消退。换句话说,感觉皮层对于长期记忆是必不可少的,而与行为相关的皮层具有记忆的恢复能力则与记忆的消亡相关。

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