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化学生物学技术推动了行为回路和药物作用神经机制研究的范式变革。

Chemogenetics drives paradigm change in the investigation of behavioral circuits and neural mechanisms underlying drug action.

机构信息

Department of Biomedical Science, Florida Atlantic University, Boca Raton, FL, USA.

Department of Psychology, Tokiwa University, Mito, Ibaraki, Japan; Department of Systems Physiology, University of Ryukyus, Faculty of Medicine, Nakagami District, Okinawa, Japan.

出版信息

Behav Brain Res. 2021 May 21;406:113234. doi: 10.1016/j.bbr.2021.113234. Epub 2021 Mar 16.

Abstract

Recent developments in chemogenetic approaches to the investigation of brain function have ushered in a paradigm change in the strategy for drug and behavior research and clinical drug-based medications. As the nature of the drug action is based on humoral regulation, it is a challenge to identify the neuronal mechanisms responsible for the expression of certain targeted behavior induced by drug application. The development of chemogenetic approaches has allowed researchers to control neural activities in targeted neurons through a toolbox, including engineered G protein-coupled receptors or ligand-gated ion channels together with exogenously inert synthetic ligands. This review provides a brief overview of the chemogenetics toolbox with an emphasis on the DREADDs (Designer Receptors Exclusively Activated by Designer Drugs) technique used in rodent models, which is applicable to the investigation of how specific neural circuits regulate behavioral processes. The use of chemogenetics has had a significant impact on basic neuroscience for a better understanding of the relationships between brain activity and the expression of behaviors with cell- and circuit-specific orders. Furthermore, chemogenetics is potentially a useful tool to deconstruct the neuropathological mechanisms of mental diseases and its regulation by drug, and provide us with transformative therapeutics with medication. We also review recent findings in the use of chemogenetic techniques to uncover functional circuit connections of serotonergic neurons in rodent models.

摘要

近年来,化学遗传学方法在脑功能研究中的发展,为药物和行为研究以及临床药物治疗策略带来了范式转变。由于药物作用的本质是基于体液调节,因此,确定药物应用诱导特定靶向行为表达的神经元机制是一项挑战。化学遗传学方法的发展使得研究人员能够通过工具箱控制靶向神经元的神经活动,该工具箱包括工程化的 G 蛋白偶联受体或配体门控离子通道,以及外源性惰性合成配体。本文简要概述了化学遗传学工具箱,重点介绍了在啮齿动物模型中使用的 DREADDs( Designer Receptors Exclusively Activated by Designer Drugs )技术,该技术适用于研究特定神经回路如何调节行为过程。化学遗传学的应用对基础神经科学产生了重大影响,有助于更好地理解大脑活动与行为表达之间的关系,以及具有细胞和回路特异性的顺序。此外,化学遗传学是一种潜在的有用工具,可以剖析精神疾病的神经病理学机制及其药物调节,并为我们提供具有变革性的治疗方法。我们还回顾了最近在使用化学遗传学技术揭示啮齿动物模型中 5-羟色胺能神经元功能回路连接方面的发现。

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