首页> 美国卫生研究院文献>The Journal of Neuroscience >Ventrolateral Striatal Medium Spiny Neurons Positively Regulate Food-Incentive Goal-Directed Behavior Independently of D1 and D2 Selectivity
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Ventrolateral Striatal Medium Spiny Neurons Positively Regulate Food-Incentive Goal-Directed Behavior Independently of D1 and D2 Selectivity

机译:腹侧纹状体中棘神经元独立于D1和D2选择性正向调节食物诱因目标行为

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摘要

The ventral striatum is involved in motivated behavior. Akin to the dorsal striatum, the ventral striatum contains two parallel pathways: the striatomesencephalic pathway consisting of dopamine receptor Type 1-expressing medium spiny neurons (D1-MSNs) and the striatopallidal pathway consisting of D2-MSNs. These two genetically identified pathways are thought to encode opposing functions in motivated behavior. It has also been reported that D1/D2 genetic selectivity is not attributed to the anatomical discrimination of two pathways. We wanted to determine whether D1- and D2-MSNs in the ventral striatum functioned in an opposing manner as previous observations claimed, and whether D1/D2 selectivity corresponded to a functional segregation in motivated behavior of mice. To address this question, we focused on the lateral portion of ventral striatum as a region implicated in food-incentive, goal-directed behavior, and recorded D1 or D2-MSN activity by using a gene-encoded ratiometric Ca2+ indicator and by constructing a fiberphotometry system, and manipulated their activities via optogenetic inhibition during ongoing behaviors. We observed concurrent event-related compound Ca2+ elevations in ventrolateral D1- and D2-MSNs, especially at trial start cue-related and first lever press-related times. D1 or D2 selective optogenetic inhibition just after the trial start cue resulted in a reduction of goal-directed behavior, indicating a shared coding of motivated behavior by both populations at this time. Only D1-selective inhibition just after the first lever press resulted in the reduction of behavior, indicating D1-MSN-specific coding at that specific time. Our data did not support opposing encoding by both populations in food-incentive, goal-directed behavior.>SIGNIFICANCE STATEMENT An opposing role of dopamine receptor Type 1 or Type 2-expressing medium spiny neurons (D1-MSNs or D2-MSNs) on striatum-mediated behaviors has been widely accepted. However, this idea has been questioned by recent reports. In the present study, we measured concurrent Ca2+ activity patterns of D1- and D2-MSNs in the ventrolateral striatum during food-incentive, goal-directed behavior in mice. According to Ca2+ activity patterns, we conducted timing-specific optogenetic inhibition of each type of MSN. We demonstrated that both D1- and D2-MSNs in the ventrolateral striatum commonly and positively encoded action initiation, whereas only D1-MSNs positively encoded sustained motivated behavior. These findings led us to reconsider the prevailing notion of a functional segregation of MSN activity in the ventral striatum.
机译:腹侧纹状体参与动机行为。类似于背侧纹状体,腹侧纹状体包含两个平行途径:由多巴胺受体1型表达的中型棘突神经元(D1-MSNs)组成的纹状体脑脑途径和由D2-MSNs组成的纹状体神经通路。据认为,这两个基因鉴定的途径编码了动机行为中的相反功能。也有报道说D1 / D2遗传选择性不归因于两条途径的解剖学区别。我们想确定腹侧纹状体中的D1-和D2-MSN是否以与先前观察到的相反的方式起作用,以及D1 / D2的选择性是否对应于小鼠动机行为中的功能隔离。为了解决这个问题,我们着重研究了腹侧纹状体的外侧部分,该区域与食物诱因,目标行为有关,并通过使用基因编码的比率式Ca 2+ <记录了D1或D2-MSN活性。 / sup>指示器,并通过构建纤维光度测定系统,并在进行中的行为过程中通过光遗传抑制来控制其活动。我们观察到腹侧D1-和D2-MSNs中并发事件相关的化合物Ca 2 + 升高,尤其是在试验开始提示相关的时间和第一杆按压相关的时间。在试验开始提示后立即进行的D1或D2选择性光遗传学抑制作用导致目标导向行为的减少,表明此时这两个人群的动机行为共享编码。仅在第一次按下操纵杆后才进行D1选择性抑制会导致行为减少,这表明在该特定时间D1特定于MSN。我们的数据不支持两个人群在食物激励,目标导向行为中的相反编码。>意义声明多巴胺受体1型或2型表达的中型多刺神经元(D1-MSNs或D2-MSNs)在纹状体介导的行为上已被广泛接受。但是,最近的报道对这一想法提出了质疑。在本研究中,我们测量了小鼠食物激发性,目标导向性行为时腹侧纹状体中D1-和D2-MSN的同时Ca 2 + 活性模式。根据Ca 2 + 的活性模式,我们对每种类型的MSN进行了时间特异性的光遗传学抑制。我们证明,腹侧纹状体中的D1-MSN和D2-MSN共同且积极地编码了动作启动,而只有D1-MSN积极地编码了持续的激励行为。这些发现使我们重新考虑了腹侧纹状体中MSN活性功能分离的普遍概念。

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