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首页> 外文期刊>Neuroinformatics >Inverse Current Source Density Method in Two Dimensions: Inferring Neural Activation from Multielectrode Recordings
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Inverse Current Source Density Method in Two Dimensions: Inferring Neural Activation from Multielectrode Recordings

机译:二维逆电流源密度方法:从多电极记录中推断神经激活

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摘要

The recent development of large multielectrode recording arrays has made it affordable for an increasing number of laboratories to record from multiple brain regions simultaneously. The development of analytical tools for array data, however, lags behind these technological advances in hardware. In this paper, we present a method based on forward modeling for estimating current source density from electrophysiological signals recorded on a two-dimensional grid using multi-electrode rectangular arrays. This new method, which we call two-dimensional inverse Current Source Density (iCSD 2D), is based upon and extends our previous one- and three-dimensional techniques. We test several variants of our method, both on surrogate data generated from a collection of Gaussian sources, and on model data from a population of layer 5 neocortical pyramidal neurons. We also apply the method to experimental data from the rat subiculum. The main advantages of the proposed method are the explicit specification of its assumptions, the possibility to include system-specific information as it becomes available, the ability to estimate CSD at the grid boundaries, and lower reconstruction errors when compared to the traditional approach. These features make iCSD 2D a substantial improvement over the approaches used so far and a powerful new tool for the analysis of multielectrode array data. We also provide a free GUI-based MATLAB toolbox to analyze and visualize our test data as well as user datasets.
机译:大型多电极记录阵列的最新发展使越来越多的实验室能够从多个大脑区域同时进行记录变得负担得起。但是,用于阵列数据的分析工具的开发落后于硬件的这些技术进步。在本文中,我们提出了一种基于正向建模的方法,该方法可通过使用多电极矩形阵列从二维网格上记录的电生理信号估计电流源密度。这种称为二维逆电流源密度(iCSD 2D)的新方法基于并扩展了我们以前的一维和三维技术。我们测试了我们方法的几种变体,包括从一组高斯源生成的替代数据以及来自第5层新皮层锥体神经元群体的模型数据。我们还将这种方法应用于大鼠下颌的实验数据。与传统方法相比,该方法的主要优点是对其假设进行了明确说明,可以在系统可用时包含特定于系统的信息,可以在网格边界处估计CSD,并且可以降低重建误差。这些功能使iCSD 2D相对于目前使用的方法有了实质性的改进,并且是用于分析多电极阵列数据的功能强大的新工具。我们还提供了一个免费的基于GUI的MATLAB工具箱,以分析和可视化我们的测试数据以及用户数据集。

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  • 来源
    《Neuroinformatics》 |2011年第4期|p.401-425|共25页
  • 作者单位

    Department of Neurophysiology, Nencki Institute of Experimental Biology of the Polish Academy of Sciences, ul. Pasteura 3, 02–093, Warsaw, Poland;

    Department of Mathematical Sciences and Technology and Center for Integrative Genetics, Norwegian University of Life Sciences, Ås, Norway;

    Faculty of Life Sciences, University of Manchester, Manchester, UK;

    Department of Mathematical Sciences and Technology and Center for Integrative Genetics, Norwegian University of Life Sciences, Ås, Norway;

    Faculty of Life Sciences, University of Manchester, Manchester, UK;

    Department of Neurophysiology, Nencki Institute of Experimental Biology of the Polish Academy of Sciences, ul. Pasteura 3, 02–093, Warsaw, Poland;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Current source density; Local field potentials; Evoked potentials; Inverse problems; Rat; Hippocampus; Subiculum; Cortical model;

    机译:电流源密度;局部场电势;诱发电势;反问题;大鼠;海马体;下丘;皮质模型;

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