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首页> 外文期刊>Cerebral cortex >Striatopallidal Pathway Distinctly Modulates Goal-Directed Valuation and Acquisition of Instrumental Behavior via Striatopallidal Output Projections
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Striatopallidal Pathway Distinctly Modulates Goal-Directed Valuation and Acquisition of Instrumental Behavior via Striatopallidal Output Projections

机译:砌筑途径明显地调节目标定向估值和通过纹状体输出预测采集仪器行为

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摘要

The striatopallidal pathway is specialized for control of motor and motivational behaviors, but its causal role in striatal control of instrumental learning remains undefined (partly due to the confounding motor effects). Here, we leveraged the transient and "time-locked" optogenetic manipulations with the reward delivery to minimize motor confounding effect, to better define the striatopallidal control of instrumental behaviors. Optogenetic (Arch) silencing of the striatopallidal pathway in the dorsomedial striatum (DMS) and dorsolateral striatum (DLS) promoted goal-directed and habitual behaviors, respectively, without affecting acquisition of instrumental behaviors, indicating striatopallidal pathway suppression of instrumental behaviors under physiological condition. Conversely, striatopallidal pathway activation mainly affected the acquisition of instrumental behaviors with the acquisition suppression achieved by either optogenetic (ChR2) or chemicogenetic (hM3q) activation, by strong (10mW, but not weak 1mW) optogenetic activation, by the time-locked (but not random) optogenetic activation with the reward and by the DMS (but not DLS) striatopallidal pathway. Lastly, striatopallidal pathway modulated instrumental behaviors through striatopallidal output projections into the external globus pallidus (GPe) since optogenetic activation of the striatopallidal pathway in the DMS and of the striatopallidal output projections in the GPe similarly suppressed goal-directed behavior. Thus, the striatopallidal pathway confers distinctive and inhibitory controls of animal's sensitivity to goal-directed valuation and acquisition of instrumental behaviors under normal and over-activation conditions, through the output projections into GPe.
机译:纹状体途径专门用于控制电动机和动机行为,但其在施力学习的纬线控制中的因果作用仍未定义(部分是由于运动效应的混杂效应)。在这里,我们利用瞬态和“锁定的”光学操作与奖励交付,以最大限度地减少电动机混杂效果,以更好地定义仪器行为的纹状体控制。脊髓植物(Arch)在背体纹状体(DMS)和背侧纹状体(DLS)中脱岩途径(DLS)分别促进了目标导向和习惯性行为,同时不影响仪器行为的获取,表明在生理条件下的毒性途径抑制毒性行为。相反,纹状体途径激活主要影响通过致敏(CHR2)或化学生成(HM3Q)活化,通过锁定(但是没有随机的)致敏激活与奖励和DMS(但不是DLS)纹状体途径。最后,由于岩屑输出突起(GPE)通过纹状体输出突起调节植物行为,因为在DMS中的骨质化途径和GPE中的纹状体输出突起类似地抑制了目标定向行为的脊髓化活化。因此,纹状体途径将动物对目标导向估值和仪器行为的敏感性的独特和抑制控制赋予正常和过度激活条件下的仪器行为,通过输出投影进入GPE。

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