Gerasimov Evgenii, Mitenev Alexander, Pchitskaya Ekaterina, Chukanov Viacheslav, Bezprozvanny Ilya
Laboratory of Molecular Neurodegeneration, Peter the Great St. Petersburg Polytechnic University, Khlopina St. 11, 194021 St. Petersburg, Russia.
Department of Physiology, UT Southwestern Medical Center at Dallas, Dallas, TX 75390, USA.
J Imaging. 2023 Nov 6;9(11):243. doi: 10.3390/jimaging9110243.
The visualization of neuronal activity in vivo is an urgent task in modern neuroscience. It allows neurobiologists to obtain a large amount of information about neuronal network architecture and connections between neurons. The miniscope technique might help to determine changes that occurred in the network due to external stimuli and various conditions: processes of learning, stress, epileptic seizures and neurodegenerative diseases. Furthermore, using the miniscope method, functional changes in the early stages of such disorders could be detected. The miniscope has become a modern approach for recording hundreds to thousands of neurons simultaneously in a certain brain area of a freely behaving animal. Nevertheless, the analysis and interpretation of the large recorded data is still a nontrivial task. There are a few well-working algorithms for miniscope data preprocessing and calcium trace extraction. However, software for further high-level quantitative analysis of neuronal calcium signals is not publicly available. NeuroActivityToolkit is a toolbox that provides diverse statistical metrics calculation, reflecting the neuronal network properties such as the number of neuronal activations per minute, amount of simultaneously co-active neurons, etc. In addition, the module for analyzing neuronal pairwise correlations is implemented. Moreover, one can visualize and characterize neuronal network states and detect changes in 2D coordinates using PCA analysis. This toolbox, which is deposited in a public software repository, is accompanied by a detailed tutorial and is highly valuable for the statistical interpretation of miniscope data in a wide range of experimental tasks.
在体内可视化神经元活动是现代神经科学中的一项紧迫任务。它使神经生物学家能够获取大量有关神经元网络结构和神经元之间连接的信息。微型显微镜技术可能有助于确定由于外部刺激和各种条件(如学习、压力、癫痫发作和神经退行性疾病)而在网络中发生的变化。此外,使用微型显微镜方法,可以检测到这些疾病早期阶段的功能变化。微型显微镜已成为一种现代方法,可在自由活动动物的特定脑区同时记录数百到数千个神经元。然而,对大量记录数据的分析和解释仍然是一项艰巨的任务。有一些用于微型显微镜数据预处理和钙信号提取的有效算法。然而,用于神经元钙信号进一步高级定量分析的软件尚未公开可用。NeuroActivityToolkit是一个工具箱,提供各种统计指标计算,反映神经元网络特性,如每分钟神经元激活次数、同时共同激活的神经元数量等。此外,还实现了用于分析神经元成对相关性的模块。此外,人们可以使用主成分分析(PCA)在二维坐标中可视化和表征神经元网络状态并检测变化。这个存放在公共软件存储库中的工具箱配有详细的教程,对于广泛实验任务中微型显微镜数据的统计解释非常有价值。