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Optogenetic dissection of neural circuits underlying emotional valence and motivated behaviors

机译:基于情绪效价和动机行为的神经回路的光遗传学解剖

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摘要

The neural circuits underlying emotional valence and motivated behaviors are several synapses away from both defined sensory inputs and quantifiable motor outputs. Electrophysiology has provided us with a suitable means for observing neural activity during behavior, but methods for controlling activity for the purpose of studying motivated behaviors have been inadequate: electrical stimulation lacks cellular specificity and pharmacological manipulation lacks temporal resolution. The recent emergence of optogenetic tools provides a new means for establishing causal relationships between neural activity and behavior. Optogenetics, the use of genetically-encodable light-activated proteins, permits the modulation of specific neural circuit elements with millisecond precision. The ability to control individual cell types, and even projections between distal regions, allows us to investigate functional connectivity in a causal manner. The greatest consequence of controlling neural activity with finer precision has been the characterization of individual neural circuits within anatomical brain regions as defined functional units. Within the mesolimbic dopamine system, optogenetics has helped separate subsets of dopamine neurons with distinct functions for reward, aversion and salience processing, elucidated GABA neuronal effects on behavior, and characterized connectivity with forebrain and cortical structures. Within the striatum, optogenetics has confirmed the opposing relationship between direct and indirect pathway medium spiny neurons (MSNs), in addition to characterizing the inhibition of MSNs by cholinergic interneurons. Within the hypothalamus, optogenetics has helped overcome the heterogeneity in neuronal cell-type and revealed distinct circuits mediating aggression and feeding. Within the amygdala, optogenetics has allowed the study of intra-amygdala microcircuitry as well as interconnections with distal regions involved in fear and anxiety. In this review, we will present the body of optogenetic studies that has significantly enhanced our understanding of emotional valence and motivated behaviors.
机译:情绪价和动机行为所基于的神经回路与既定的感觉输入和可量化的运动输出都没有几个突触。电生理学为我们提供了一种在行为过程中观察神经活动的合适方法,但是以研究动机行为为目的的控制活动的方法并不充分:电刺激缺乏细胞特异性,药理操作缺乏时间分辨率。光遗传学工具的最新出现为建立神经活动与行为之间的因果关系提供了新的手段。光遗传学是使用可遗传编码的光激活蛋白,它允许以毫秒为单位的调制特定神经回路元件。控制单个细胞类型甚至远端区域之间的投影的能力使我们能够以因果关系研究功能连接性。以更高的精度控制神经活动的最大结果是,将解剖脑区域内的单个神经回路表征为定义的功能单元。在中脑边缘的多巴胺系统中,光遗传学已帮助分离出具有不同功能的多巴胺神经元子集,以实现奖励,厌恶和显着加工,阐明了GABA神经元对行为的影响,并表征了与前脑和皮质结构的连通性。在纹状体内,光遗传学已经证实了直接和间接途径的中棘神经元(MSNs)之间的相反关系,除了表征了胆碱能中间神经元对MSNs的抑制作用。在下丘脑内,光遗传学已经帮助克服了神经元细胞类型的异质性,并揭示了介导侵略和进食的独特电路。在杏仁核内,光遗传学已经允许研究杏仁核内微电路以及与涉及恐惧和焦虑的远端区域的互连。在这篇综述中,我们将介绍光遗传学研究的主体,这些研究显着增强了我们对情绪价和动机行为的理解。

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