首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Functional interaction of medial mediodorsal thalamic nucleus but not nucleus accumbens with amygdala and orbital prefrontal cortex is essential for adaptive response selection after reinforcer devaluation.
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Functional interaction of medial mediodorsal thalamic nucleus but not nucleus accumbens with amygdala and orbital prefrontal cortex is essential for adaptive response selection after reinforcer devaluation.

机译:内侧胚胎核但不是具有杏仁菌和轨道前额定皮层的核尿嘧啶的功能性相互作用对于增强剂贬值后的适应性反应选择是必不可少的。

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摘要

In nonhuman primates, reward-based decision making may be assessed through choices of objects overlying two different foods, one of which has been devalued by selective satiation. The most adaptive object choices yield the food of higher value. A large body of data identifies the amygdala and orbital prefrontal cortex (PFo) as neural mediators of adaptive responses to reinforcer devaluation. More recent work in nonhuman primates reveals the critical role of the medial, magnocellular portion of the mediodorsal nucleus of the thalamus (MDm) as well. Because both the nucleus accumbens (NA) and the MDm are anatomically related to the amygdala and PFo, and because both regions are implicated in reward processing, we tested whether either region necessarily interacts with the amygdala and PFo to mediate reinforcer devaluation effects. We used a crossed-disconnection design in which monkeys received amygdala and PFo lesions in one hemisphere combined with either NA or MDm lesions in the contralateral hemisphere. Monkeys that sustained NA disconnection, like controls, showed robust shifts in object choices in response to reinforcer devaluation. In contrast, monkeys that sustained MDm disconnection failed to adjust their object choices. Thus, MDm, but not NA, works together with the amygdala and PFo to support reward-based decision making.
机译:在非人的灵长类动物中,可以通过覆盖两种不同食物的物体的选择来评估基于奖励的决策,其中一个是通过选择性饱满的贬值。最适应性的对象选择会产生更高价值的食物。大量数据识别的杏仁核和眶前额叶皮质(PFO)作为到加强件贬值适应性反应神经介体。最近在非人的原始工程中的工作揭示了丘脑(MDM)的中介,甲状腺核的内侧粒细胞部分的关键作用。因为核常量(NA)和MDM都与Amygdala和PFO有关,因为这两个地区都涉及奖励处理,我们测试了任一区是否必然与杏仁达拉和PFO相互作用以介导加强能量贬值效应。我们使用在猴子在一个半球与任一NA或MDM病变在对侧半球组合接收杏仁核和PFO病变交叉断开设计。猴子持续控制的猴子,如控件,在响应增强器贬值时显示了对象选择中的强大移位。相比之下,持续MDM断开的猴子无法调整其对象选择。因此,MDM,但不是NA,与Amygdala和PFO一起工作,以支持基于奖励的决策。

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