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局部D2到D1神经元转换调节更新纹状体中的目标学习
作者:小柯机器人 发布时间:2020/2/12 9:52:11

澳大利亚新南威尔士大学Jesus Bertran-Gonzalez、Miriam Matamales等研究人员合作发现,局部D2到D1神经元转换调节更新纹状体中的目标学习。2020年1月31日,国际知名学术期刊《科学》发表了这一成果。

通过在小鼠中表达多巴胺受体类型1(D1-SPN)或2(D2-SPN)的棘状投射神经元(SPN)中映射多巴胺依赖性转录激活标记,研究人员证明了广泛而动态的D2-纹状体上的D1-SPN转换调节对于更新先前的目标学习是必需的。这些发现表明,D2-SPN抑制了功能相关纹状体区域内过时的D1-SPN可塑性对重塑意志活动的影响。
 
据了解,消退学习使动物能够停止与奖励无关的行为,从而实现了行为控制。尽管这种学习被认为依赖于纹状体中的多巴胺信号,但是在新的学习过程中,介导目标控制回路的重组方式仍然未知。
 
附:英文原文

Title: Local D2- to D1-neuron transmodulation updates goal-directed learning in the striatum

Author: Miriam Matamales, Alice E. McGovern, Jia Dai Mi, Stuart B. Mazzone, Bernard W. Balleine, Jesus Bertran-Gonzalez

Issue&Volume: 2020/01/31

Abstract: Extinction learning allows animals to withhold voluntary actions that are no longer related to reward and so provides a major source of behavioral control. Although such learning is thought to depend on dopamine signals in the striatum, the way the circuits that mediate goal-directed control are reorganized during new learning remains unknown. Here, by mapping a dopamine-dependent transcriptional activation marker in large ensembles of spiny projection neurons (SPNs) expressing dopamine receptor type 1 (D1-SPNs) or 2 (D2-SPNs) in mice, we demonstrate an extensive and dynamic D2- to D1-SPN transmodulation across the striatum that is necessary for updating previous goal-directed learning. Our findings suggest that D2-SPNs suppress the influence of outdated D1-SPN plasticity within functionally relevant striatal territories to reshape volitional action.

DOI: 10.1126/science.aaz5751

Source: https://science.sciencemag.org/content/367/6477/549

期刊信息
Science:《科学》,创刊于1880年。隶属于美国科学促进会,最新IF:41.037