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FISSA:用于钙成像信号的神经毡净化工具箱。

FISSA: A neuropil decontamination toolbox for calcium imaging signals.

作者信息

Keemink Sander W, Lowe Scott C, Pakan Janelle M P, Dylda Evelyn, van Rossum Mark C W, Rochefort Nathalie L

机构信息

Institute for Adaptive and Neural Computation, School of Informatics, University of Edinburgh, Edinburgh, EH8 9AB, UK.

Bernstein Center Freiburg, Faculty of Biology, University of Freiburg, 79104, Freiburg, Germany.

出版信息

Sci Rep. 2018 Feb 22;8(1):3493. doi: 10.1038/s41598-018-21640-2.

Abstract

In vivo calcium imaging has become a method of choice to image neuronal population activity throughout the nervous system. These experiments generate large sequences of images. Their analysis is computationally intensive and typically involves motion correction, image segmentation into regions of interest (ROIs), and extraction of fluorescence traces from each ROI. Out of focus fluorescence from surrounding neuropil and other cells can strongly contaminate the signal assigned to a given ROI. In this study, we introduce the FISSA toolbox (Fast Image Signal Separation Analysis) for neuropil decontamination. Given pre-defined ROIs, the FISSA toolbox automatically extracts the surrounding local neuropil and performs blind-source separation with non-negative matrix factorization. Using both simulated and in vivo data, we show that this toolbox performs similarly or better than existing published methods. FISSA requires only little RAM, and allows for fast processing of large datasets even on a standard laptop. The FISSA toolbox is available in Python, with an option for MATLAB format outputs, and can easily be integrated into existing workflows. It is available from Github and the standard Python repositories.

摘要

在体内进行钙成像已成为一种用于对整个神经系统中神经元群体活动进行成像的首选方法。这些实验会生成大量图像序列。对其进行分析计算量很大,通常涉及运动校正、将图像分割为感兴趣区域(ROI),以及从每个ROI中提取荧光轨迹。来自周围神经纤维网和其他细胞的离焦荧光会严重污染分配给给定ROI的信号。在本研究中,我们引入了用于神经纤维网净化的FISSA工具箱(快速图像信号分离分析)。给定预定义的ROI,FISSA工具箱会自动提取周围的局部神经纤维网,并使用非负矩阵分解进行盲源分离。使用模拟数据和体内数据,我们表明该工具箱的性能与现有已发表方法相当或更优。FISSA只需要很少的随机存取存储器(RAM),即使在标准笔记本电脑上也能快速处理大型数据集。FISSA工具箱有Python版本,还可选择输出MATLAB格式,并且可以轻松集成到现有工作流程中。它可从Github和标准Python存储库获取。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9431/5823956/7b17f3908e90/41598_2018_21640_Fig1_HTML.jpg

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