Floresco Stan B, Magyar Orsolya
Department of Psychology, University of British Columbia, Vancouver, British Columbia V6T1Z4, Canada.
Psychopharmacology (Berl). 2006 Nov;188(4):567-85. doi: 10.1007/s00213-006-0404-5. Epub 2006 May 3.
Dopamine (DA) neurotransmission in the prefrontal cortex (PFC) is known to play an essential role in mediating executive functions such as the working memory. DA exerts these effects by acting on D1 receptors because blockade or stimulation of these receptors in the PFC can impair performance on delayed response tasks. However, comparatively less is known about dopaminergic mechanisms that mediate other executive functions regulated by the PFC. Furthermore, the functional importance of other DA receptor subtypes that reside on PFC neurons (D2 and D4) is unclear.
This review will summarize previous findings and previously unpublished data addressing the contribution of PFC DA to higher-order cognition. We will compare the DA receptor mechanisms, which regulate executive functions such as working memory, behavioral flexibility, and decision-making.
Whereas PFC D1 receptor activity is of primary importance in working memory, D1 and D2 receptors act in a cooperative manner to facilitate behavioral flexibility. We note that the principle of the "inverted U-shaped" function of D1 receptor activity mediating working memory does not necessarily apply to other PFC functions. DA in different subregions of the PFC also mediates decision-making assessed with delay discounting or effort-based procedures, and we report that D1, D2, and D4 receptors in the medial PFC contribute to decision-making when animals must bias the direction of behavior to avoid aversive stimuli, assessed with a conditioned punishment procedure. Thus, mesocortical DA modulation of distinct executive functions is subserved by dissociable profiles of DA receptor activity in the PFC.
已知前额叶皮质(PFC)中的多巴胺(DA)神经传递在介导诸如工作记忆等执行功能中起重要作用。DA通过作用于D1受体发挥这些作用,因为在PFC中阻断或刺激这些受体会损害延迟反应任务的表现。然而,关于介导由PFC调节的其他执行功能的多巴胺能机制,人们了解得相对较少。此外,位于PFC神经元上的其他DA受体亚型(D2和D4)的功能重要性尚不清楚。
本综述将总结先前的研究结果以及之前未发表的数据,这些数据涉及PFC DA对高阶认知的贡献。我们将比较调节诸如工作记忆、行为灵活性和决策等执行功能的DA受体机制。
虽然PFC D1受体活性在工作记忆中至关重要,但D1和D2受体以协同方式发挥作用以促进行为灵活性。我们注意到,介导工作记忆的D1受体活性的“倒U形”功能原理不一定适用于其他PFC功能。PFC不同亚区域中的DA也介导通过延迟折扣或基于努力的程序评估的决策,并且我们报告,当动物必须偏向行为方向以避免厌恶刺激时(通过条件惩罚程序评估),内侧PFC中的D1、D2和D4受体有助于决策。因此,PFC中DA受体活性特征的分离有助于中脑皮质DA对不同执行功能的调节。