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Involvement of Midbrain Dopamine Neuron Activity in Negative Reinforcement Learning in Mice

多巴胺 神经科学 习惯化 中棘神经元 黑质 纹状体 多巴胺受体D1 多巴胺能 致密部 多巴胺受体D2 心理学 中脑 多巴胺受体 神经元 化学 中枢神经系统
作者
Zhijun Diao,Yao Li,Qiangqiang Cheng,Meilin Wu,Yuanyuan Di,Zhaoqiang Qian,Chunling Wei,Yingxun Liu,Yingfang Tian,Wei Ren
出处
期刊:Molecular Neurobiology [Springer Science+Business Media]
卷期号:58 (11): 5667-5681 被引量:6
标识
DOI:10.1007/s12035-021-02515-6
摘要

The activity of the midbrain dopamine system reflects the valence of environmental events and modulates various brain structures to modify an organism’s behavior. A series of recent studies reported that the direct and indirect pathways in the striatum are critical for instrumental learning, but the dynamic changes in dopamine neuron activity that occur during negative reinforcement learning are still largely unclear. In the present study, by using a negative reinforcement learning paradigm employing foot shocks as aversive stimuli, bidirectional changes in substantia nigra pars compacta (SNc) dopamine neuron activity in the learning and habituation phases were observed. The results showed that in the learning phase, before mice had mastered the skill of escaping foot shocks, the presence of foot shocks induced a transient reduction in the activity of SNc dopamine neurons; however, in the habituation phase, in which the learned skill was automated, it induced a transient increase. Microinjection of a dopamine D1 receptor (D1R) or D2 receptor (D2R) antagonist into the dorsomedial striatum (DMS) significantly impaired learning behavior, suggesting that the modulatory effects of dopamine on both the direct and indirect pathways are required. Moreover, during the learning phase, excitatory synaptic transmission to DMS D2R-expressing medium spiny neurons (D2-MSNs) was potentiated. However, upon completion of the learning and habituation phases, the synapses onto D1R-expressing medium spiny neurons (D1-MSNs) were potentiated, and those onto D2-MSNs were restored to normal levels. The bidirectional changes in both SNc dopamine neuron activity and DMS synaptic plasticity might be the critical neural correlates for negative reinforcement learning.
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