The Duality of Astrocyte Neuromodulation: Astrocytes Sense Neuromodulators and Are Neuromodulators

IF 4 3区 医学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Journal of Neurochemistry Pub Date : 2025-04-07 DOI:10.1111/jnc.70054
Justin Lines, Michelle Corkrum, Juan Aguilar, Alfonso Araque
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Abstract

Neuromodulation encompasses different processes that regulate neuronal and network function. Classical neuromodulators originating from long-range nuclei, such as acetylcholine, norepinephrine, or dopamine, act with a slower time course and wider spatial range than fast synaptic transmission and action potential firing. Accumulating evidence in vivo indicates that astrocytes, which are known to actively participate in synaptic function at tripartite synapses, are also involved in neuromodulatory processes. The present article reviews recent findings obtained in vivo indicating that astrocytes express receptors for neuromodulators that elevate their internal calcium and stimulate the release of gliotransmitters, which regulate synaptic and network function, and hence mediate, at least partially, the effects of neuromodulators. In addition, we propose that astrocytes act in local support of neuromodulators by spatially and temporally integrating neuronal and neuromodulatory signals to regulate neural network function. The presence of astrocyte-neuron hysteresis loops suggests astrocyte–neuron interaction at tripartite synapses scales up to astrocyte–neuronal networks that modulate neural network function. We finally propose that astrocytes sense the environmental conditions, including neuromodulators and network function states, and provide homeostatic control that maximizes the dynamic range of neural network activity. In summary, we propose that astrocytes are critical in mediating the effects of neuromodulators, and they also act as neuromodulators to provide neural network homeostasis thus optimizing information processing in the brain. Hence, astrocytes sense ongoing neuronal activity along with neuromodulators and, acting as neuromodulators, inform the neurons about the state of the internal system and the external world.

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星形胶质细胞神经调节的二重性:星形胶质细胞感觉神经调节剂和是神经调节剂
神经调节包括调节神经元和网络功能的不同过程。经典的神经调节剂,如乙酰胆碱、去甲肾上腺素或多巴胺,与快速的突触传递和动作电位发射相比,其作用的时间过程较慢,空间范围较宽。体内越来越多的证据表明,星形胶质细胞除了积极参与三方突触的突触功能外,还参与神经调节过程。本文综述了最近在体内获得的研究结果,表明星形胶质细胞表达神经调节剂受体,提高其内部钙并刺激胶质递质的释放,胶质递质的释放调节突触和网络功能,因此至少部分地介导神经调节剂的作用。此外,我们提出星形胶质细胞通过空间和时间整合神经元和神经调节信号来调节神经网络功能,从而发挥神经调节剂的局部支持作用。星形胶质细胞-神经元迟滞回路的存在表明,星形胶质细胞-神经元在三方突触的相互作用扩大到星形胶质细胞-神经元网络,从而调节神经网络的功能。我们最后提出星形胶质细胞感知环境条件,包括神经调节剂和网络功能状态,并提供稳态控制,使神经网络活动的动态范围最大化。总之,我们认为星形胶质细胞在调节神经调节剂的作用中起着关键作用,它们也作为神经调节剂提供神经网络稳态,从而优化大脑中的信息处理。因此,星形胶质细胞与神经调节剂一起感知正在进行的神经元活动,并作为神经调节剂,将内部系统和外部世界的状态告知神经元。
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来源期刊
Journal of Neurochemistry
Journal of Neurochemistry 医学-神经科学
CiteScore
9.30
自引率
2.10%
发文量
181
审稿时长
2.2 months
期刊介绍: Journal of Neurochemistry focuses on molecular, cellular and biochemical aspects of the nervous system, the pathogenesis of neurological disorders and the development of disease specific biomarkers. It is devoted to the prompt publication of original findings of the highest scientific priority and value that provide novel mechanistic insights, represent a clear advance over previous studies and have the potential to generate exciting future research.
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