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Optogenetic and Chemogenetic Approaches for Studying Astrocytes and Gliotransmitters

机译:研究星形胶质细胞和神经胶质递质的光遗传学和化学遗传学方法

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摘要

The brain consists of heterogeneous populations of neuronal and non-neuronal cells. The revelation of their connections and interactions is fundamental to understanding normal brain functions as well as abnormal changes in pathological conditions. Optogenetics and chemogenetics have been developed to allow functional manipulations both in vitro and in vivo to examine causal relationships between cellular changes and functional outcomes. These techniques are based on genetically encoded effector molecules that respond exclusively to exogenous stimuli, such as a certain wavelength of light or a synthetic ligand. Activation of effector molecules provokes diverse intracellular changes, such as an influx or efflux of ions, depolarization or hyperpolarization of membranes, and activation of intracellular signaling cascades. Optogenetics and chemogenetics have been applied mainly to the study of neuronal circuits, but their use in studying non-neuronal cells has been gradually increasing. Here we introduce recent studies that have employed optogenetics and chemogenetics to reveal the function of astrocytes and gliotransmitters.
机译:大脑由神经元和非神经元细胞的异质群体组成。它们之间的联系和相互作用的揭示对于理解正常的大脑功能以及病理状况的异常变化至关重要。已经开发了光遗传学和化学遗传学,以允许在体外和体内进行功能操纵,以检查细胞变化与功能结果之间的因果关系。这些技术基于仅对特定波长的光或合成配体等外源刺激作出反应的遗传编码效应分子。效应分子的激活会引起多种细胞内变化,例如离子的流入或流出,膜的去极化或超极化以及细胞内信号级联反应的激活。光遗传学和化学遗传学已主要用于神经元回路的研究,但它们在研究非神经元细胞中的用途已逐渐增加。在这里,我们介绍利用光遗传学和化学遗传学来揭示星形胶质细胞和神经胶质递质的功能的最新研究。

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