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An interactive visualization tool for multi-channel confocal microscopy data in neurobiology research

机译:用于神经生物学研究中的多通道共聚焦显微镜数据的交互式可视化工具

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Confocal microscopy is widely used in neurobiology for studying the three-dimensional structure of the nervous system. Confocal image data are often multi-channel, with each channel resulting from a different fluorescent dye or fluorescent protein; one channel may have dense data, while another has sparse; and there are often structures at several spatial scales: subneuronal domains, neurons, and large groups of neurons (brain regions). Even qualitative analysis can therefore require visualization using techniques and parameters fine-tuned to a particular dataset. Despite the plethora of volume rendering techniques that have been available for many years, the techniques standardly used in neurobiological research are somewhat rudimentary, such as looking at image slices or maximal intensity projections. Thus there is a real demand from neurobiologists, and biologists in general, for a flexible visualization tool that allows interactive visualization of multi-channel confocal data, with rapid fine-tuning of parameters to reveal the three-dimensional relationships of structures of interest. Together with neurobiologists, we have designed such a tool, choosing visualization methods to suit the characteristics of confocal data and a typical biologist's workflow. We use interactive volume rendering with intuitive settings for multidimensional transfer functions, multiple render modes and multi-views for multi-channel volume data, and embedding of polygon data into volume data for rendering and editing. As an example, we apply this tool to visualize confocal microscopy datasets of the developing zebrafish visual system.
机译:共聚焦显微镜在神经生物学中被广泛用于研究神经系统的三维结构。共焦图像数据通常是多通道的,每个通道都来自不同的荧光染料或荧光蛋白;一个通道可能有密集数据,而另一个通道则稀疏;而且通常在几个空间尺度上都有结构:神经下区域,神经元和大批神经元(大脑区域)。因此,即使定性分析也可能需要使用微调到特定数据集的技术和参数进行可视化。尽管已有许多年的体积渲染技术,但神经生物学研究中标准使用的技术还是比较基本的,例如查看图像切片或最大强度投影。因此,神经生物学家和生物学家普遍需求一种灵活的可视化工具,该工具允许对多通道共聚焦数据进行交互式可视化,并通过快速微调参数来揭示感兴趣结构的三维关系。我们与神经生物学家一起设计了这样一种工具,选择可视化方法以适合共聚焦数据和典型生物学家工作流程的特征。我们将交互式体绘制与具有直观设置的多维传递函数,多种渲染模式和多视图用于多通道体数据一起使用,并将多边形数据嵌入到体数据中以进行渲染和编辑。作为示例,我们应用此工具来可视化正在开发的斑马鱼视觉系统的共聚焦显微镜数据集。

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