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将脑片的纹状体活动转化为整体动物神经生理学:整合不同分析层次的神经科学研究指南。

Translating striatal activity from brain slice to whole animal neurophysiology: A guide for neuroscience research integrating diverse levels of analysis.

机构信息

Department of Psychology and John Paul Scott Center for Neuroscience, Mind and Behavior, Bowling Green State University, Bowling Green, Ohio.

出版信息

J Neurosci Res. 2019 Dec;97(12):1528-1545. doi: 10.1002/jnr.24480. Epub 2019 Jun 30.

DOI:10.1002/jnr.24480
PMID:31257656
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6801057/
Abstract

An important goal of this review is highlighting research in neuroscience as examples of multilevel functional and anatomical analyses addressing basic science issues and applying results to the understanding of diverse disorders. The research of Dr. Michael Levine, a leader in neuroscience, exemplifies this approach by uncovering fundamental properties of basal ganglia function and translating these findings to clinical applications. The review focuses on neurophysiological research connecting results from in vitro and in vivo recordings. A second goal is to utilize these research connections to produce novel, accurate descriptions for corticostriatal processing involved in varied, complex functions. Medium spiny neurons in striatum act as integrators combining input with baseline activity creating motivational "events." Basic research on corticostriatal synapses is described and links developed to issues with clinical relevance such as inhibitory gating, self-injurious behavior, and relative reward valuation. Work is highlighted on dopamine-glutamate interactions. Individual medium spiny neurons express both D and D receptors and encode information in a bivalent manner depending upon the mix of receptors involved. Current work on neurophysiology of reward processing has taken advantage of these basic approaches at the cellular and molecular levels. Future directions in studying physiology of reward processing and action sequencing could profit by incorporating the divergent ways dopamine modulates incoming neurochemical signals. Primary investigators leading research teams should mirror Mike Levine's efforts in "climbing the mountain" of scientific inquiry by performing analyses at different levels of inquiry, integrating the findings, and building comprehensive answers to problems unsolvable without this bold approach.

摘要

本次综述的一个重要目标是突出神经科学研究的重要性,将其作为多层次功能和解剖分析的范例,以解决基础科学问题并将研究成果应用于理解多种疾病。神经科学领导者 Michael Levine 博士的研究就是这种方法的典范,他揭示了基底神经节功能的基本特性,并将这些发现应用于临床应用。该综述侧重于连接体外和体内记录结果的神经生理学研究。第二个目标是利用这些研究联系,为涉及各种复杂功能的皮质纹状体处理产生新颖、准确的描述。纹状体中的中间神经元作为整合器,将输入与基线活动结合起来,产生动机“事件”。描述了皮质纹状体突触的基础研究,并建立了与临床相关问题的联系,如抑制门控、自我伤害行为和相对奖励评估。强调了多巴胺-谷氨酸相互作用的工作。个体中间神经元表达 D 和 D 受体,并根据所涉及的受体组合以二价方式编码信息。目前关于奖励处理的神经生理学研究利用了这些细胞和分子水平的基本方法。通过在不同的研究层次上进行分析、整合研究结果,并建立综合答案来解决没有这种大胆方法无法解决的问题,研究奖励处理和动作序列的生理学的未来方向可能会受益。领导研究团队的主要研究人员应该效仿 Mike Levine 在“攀登科学探究之山”方面的努力,通过在不同的探究层次上进行分析、整合研究结果,并建立全面的答案来解决没有这种大胆方法无法解决的问题。

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Beyond drug-induced alteration of glutamate homeostasis, astrocytes may contribute to dopamine-dependent intrastriatal functional shifts that underlie the development of drug addiction: A working hypothesis.除了药物引起的谷氨酸稳态改变之外,星形胶质细胞可能有助于多巴胺依赖性纹状体内部功能转移,而后者是药物成瘾发展的基础:一个工作假说。
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