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中文摘要
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描述(申请人提供):5-羟色胺-6(5-HT6)受体在纹状体中的刺神经元中的表达比人或大鼠大脑中的任何其他部位都要高。因此,它们被定位为调节5-羟色胺对动机行为的相当大比例的影响,例如参与学习和维持自然和药物奖励的自我管理。我们先前证实,5-HT6受体干扰背侧和腹侧纹状体奖励性学习的获得。我们的核心假设是,由于5-HT6受体在直接和间接通路中的棘神经元中都有表达,这些受体对这两条通路的激活程度相似。这与多巴胺的作用相反,多巴胺通过D1受体激活直接通路神经元,通过D2受体抑制间接通路神经元。因此,多巴胺打开“ON”开关和关闭“OFF”开关,这些通路中的不同活动促进动机行为和程序性学习,而5-HT6受体的激活通过同时激活这两个途径来减少这种不同活动。为了验证这一假设,我们开发了病毒载体,使我们能够在直接或间接途径的刺状神经元中选择性地表达转基因。这些载体基于强啡肽或脑啡肽启动子,分别以直接和间接途径中的刺神经元为靶点。我们已经收集了强有力的证据表明pDYN和Penk载体选择性地靶向这些途径。这为我们提供了关键的工具,以增加或减少5-HT6受体在这些途径的差异表达,并测试纹状体5-HT6受体作用的细胞机制。这项提议的总体计划是使用这些载体来解开5-HT6受体在背侧和腹侧纹状体的直接和间接通路神经元中的作用。我们将使用过表达或RNAi敲除来调节这两种途径中5-HT6受体的表达,以检测纹状体不同亚区的5-HT6受体在工具性学习中获得自然奖励和药物奖励(可卡因)的情况。我们还将研究一旦建立自我管理,每条通路上的这些受体对可卡因动机的影响,以及面对可卡因服用的负面后果时,它们对强制吸食药物的影响。该项目所涉及的假设、策略和工具都具有很高的创新性。这项工作的长期目标是了解5-羟色胺对药物滥用中这些不同途径的影响,以便开发更好的成瘾治疗方法。
英文摘要
DESCRIPTION (provided by applicant): Serotonin-6 (5-HT6) receptors are more heavily expressed in striatal medium spiny neurons than anywhere else in human or rat brain. Therefore, they are positioned to mediate a significant proportion of serotonin's effect on motivated behavior, such as is involved in learning and maintenance of self-administration of natural and drug rewards. We previously established that 5-HT6 receptors interfere with the acquisition of reward motivated learning in both dorsal and ventral striatum. Our core hypothesis is that, since 5-HT6 receptors are expressed in both the direct and indirect pathway medium spiny neurons, these receptors activate both pathways to a similar extent. This opposes the action of dopamine, which activates direct pathway neurons via D1 receptors and inhibits indirect pathway neurons via D2 receptors. Thus, dopamine turn on the "on" switch and off the "off" switch, and differential activity in these pathways promotes motivated behavior and procedural learning whereas 5-HT6 receptor activation reduces this differential activity by activating both pathways simultaneously. In order to test this hypothesis we have developed viral vectors that allow us to express transgenes selectively in the direct or indirect pathway medium spiny neurons. These vectors are based on the dynorphin or enkephalin promoter, which differentially target the direct and indirect pathway medium spiny neurons, respectively. We have collected strong evidence that the pDYN and pENK vectors target these pathways selectively. This provides us with key tools to increase or decrease 5-HT6 receptor expression in these pathways differentially and to test the cellular mechanism underlying striatal 5-HT6 receptor actions. The overall plan for this proposal is to use these vectors to disentangle the role of 5-HT6 receptors in direct and indirect pathway neurons of both dorsal and ventral striatum. We will use either overexpression or RNAi knockdown to modulate 5-HT6 receptor expression in either pathway to examine 5-HT6 receptors in discrete subregions of striatum on instrumental learning for a natural reward as well as a drug reward (cocaine). We will also examine the impact of these receptors in each pathway on motivation for cocaine once self-administration is established, and their effect on compulsive drug taking in the face of negative consequences to cocaine taking. The hypothesis, strategy, and tools involved in this project are all highly innovative. The long-term goal of this work is to understand the impact of serotonin on these distinct pathways in drug abuse so that better treatments for addiction can be developed.
期刊论文(4)
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会议论文
Using DREADDs to investigate addiction behaviors.
使用 DREADD 来调查成瘾行为。
DOI: 10.1016/j.cobeha.2014.09.004
发表时间: 2015
期刊: Current opinion in behavioral sciences
影响因子: 5
作者: [Ferguson,SusanM, Neumaier,JohnF]
通讯作者: Neumaier,JohnF
DOI: 10.1016/j.brainres.2012.10.011
发表时间: 2013-05-20
期刊: Brain research
影响因子: 2.9
作者: [Nair SG, Strand NS, Neumaier JF]
通讯作者: Neumaier JF
Microglia and Opioid Withdrawal: Mechanisms of Negative Reinforcement
The Unfolding Role of Microglia in Alcohol Withdrawal
The Unfolding Role of Microglia in Alcohol Withdrawal
Microglia and Opioid Withdrawal: Mechanisms of Negative Reinforcement
海外基金