Paniccia Jacqueline E, Otis James M, Scofield Michael D
Department of Anesthesia and Perioperative Medicine, Medical University of South Carolina, Charleston, SC, United States.
Department of Neuroscience, Medical University of South Carolina, Charleston, SC, United States.
Comput Struct Biotechnol J. 2022 Aug 2;20:4146-4156. doi: 10.1016/j.csbj.2022.07.052. eCollection 2022.
Astrocytes are critical components of neural circuits positioned in close proximity to the synapse, allowing them to rapidly sense and respond to neuronal activity. One repeatedly observed biomarker of astroglial activation is an increase in intracellular Ca levels. These astroglial Ca signals are often observed spreading throughout various cellular compartments from perisynaptic astroglial processes, to major astrocytic branches and on to the soma or cell body. Here we review recent evidence demonstrating that astrocytic Ca events are remarkably heterogeneous in both form and function, propagate through the astroglial syncytia, and are directly linked to the ability of astroglia to influence local neuronal activity. As many of the cellular functions of astroglia can be linked to intracellular Ca signaling, and the diversity and heterogeneity of these events becomes more apparent, there is an increasing need for novel experimental strategies designed to better understand the how these signals evolve in parallel with neuronal activity. Here we review the recent advances that enable the characterization of both subcellular and population-wide astrocytic Ca dynamics. Additionally, we also outline the experimental design required for simultaneous Ca imaging in the context of neuronal or astroglial manipulation, highlighting new experimental strategies made possible by recent advances in viral vector, imaging, and quantification technologies. Through combined usage of these reagents and methodologies, we provide a conceptual framework to study how astrocytes functionally integrate into neural circuits and to what extent they influence and direct the synaptic activity underlying behavioral responses.
星形胶质细胞是神经回路的关键组成部分,位于突触附近,使其能够快速感知并响应神经元活动。星形胶质细胞激活的一个反复观察到的生物标志物是细胞内钙水平的升高。这些星形胶质细胞钙信号通常从突触周围的星形胶质细胞突起扩散到各种细胞区室,再到主要的星形胶质细胞分支,直至胞体。在这里,我们回顾了最近的证据,表明星形胶质细胞的钙事件在形式和功能上都非常异质,通过星形胶质细胞的合体传播,并且与星形胶质细胞影响局部神经元活动的能力直接相关。由于星形胶质细胞的许多细胞功能都与细胞内钙信号传导有关,而且这些事件的多样性和异质性变得更加明显,因此越来越需要新的实验策略来更好地理解这些信号如何与神经元活动并行演化。在这里,我们回顾了最近的进展,这些进展能够表征亚细胞和群体水平的星形胶质细胞钙动力学。此外,我们还概述了在神经元或星形胶质细胞操作背景下同时进行钙成像所需的实验设计,突出了病毒载体、成像和量化技术的最新进展所带来的新实验策略。通过联合使用这些试剂和方法,我们提供了一个概念框架,以研究星形胶质细胞如何在功能上整合到神经回路中,以及它们在多大程度上影响和指导行为反应背后的突触活动。
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