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准确量化星形胶质细胞和神经递质荧光动力学,用于单细胞和群体水平的生理学研究。

Accurate quantification of astrocyte and neurotransmitter fluorescence dynamics for single-cell and population-level physiology.

机构信息

Bradley Department of Electrical and Computer Engineering, Virginia Polytechnic Institute and State University, Arlington, VA, USA.

Department of Biochemistry & Biophysics, University of California, San Francisco, San Francisco, CA, USA.

出版信息

Nat Neurosci. 2019 Nov;22(11):1936-1944. doi: 10.1038/s41593-019-0492-2. Epub 2019 Sep 30.

Abstract

Recent work examining astrocytic physiology centers on fluorescence imaging, due to development of sensitive fluorescent indicators and observation of spatiotemporally complex calcium activity. However, the field remains hindered in characterizing these dynamics, both within single cells and at the population level, because of the insufficiency of current region-of-interest-based approaches to describe activity that is often spatially unfixed, size-varying and propagative. Here we present an analytical framework that releases astrocyte biologists from region-of-interest-based tools. The Astrocyte Quantitative Analysis (AQuA) software takes an event-based perspective to model and accurately quantify complex calcium and neurotransmitter activity in fluorescence imaging datasets. We apply AQuA to a range of ex vivo and in vivo imaging data and use physiologically relevant parameters to comprehensively describe the data. Since AQuA is data-driven and based on machine learning principles, it can be applied across model organisms, fluorescent indicators, experimental modes, and imaging resolutions and speeds, enabling researchers to elucidate fundamental neural physiology.

摘要

最近,对星形胶质细胞生理学的研究集中在荧光成像上,这是由于敏感荧光指示剂的发展以及对时空复杂钙活性的观察。然而,由于当前基于感兴趣区域的方法不足以描述通常空间不固定、大小变化和传播的活动,该领域在对这些动力学进行特征描述方面仍然受到阻碍。在这里,我们提出了一个分析框架,使星形胶质细胞生物学家摆脱基于感兴趣区域的工具。星形胶质细胞定量分析 (AQuA) 软件采用基于事件的视角来模拟和准确量化荧光成像数据中的复杂钙和神经递质活性。我们将 AQuA 应用于一系列离体和体内成像数据,并使用生理相关参数全面描述数据。由于 AQuA 是数据驱动的,并基于机器学习原理,因此它可以应用于不同的模式生物、荧光指示剂、实验模式以及成像分辨率和速度,使研究人员能够阐明基本的神经生理学。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/20b4/6858541/9e53180768c5/nihms-1537261-f0001.jpg

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