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Visualizing in vivo brain neural structures using volume rendered feature spaces.

机译:使用体积渲染的特征空间可视化体内脑神经结构。

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摘要

[Background]Dendrites of cortical neurons are widely spread across several layers of the cortex. Recently developed two-photon microscopy systems are capable of visualizing the morphology of neurons within deeper layers of the brain and generate large amounts of volumetric imaging data from living tissue. [Method]For visual exploration of the three-dimensional (3D) structure of dendrites and the connectivity among neurons in the brain, we propose a visualization software and interface for 3D images based on a new transfer function design using volume rendered feature spaces. This software enables the visualization of multidimensional descriptors of shape and texture extracted from imaging data to characterize tissue. It also allows the efficient analysis and visualization of large data sets. [Results]We apply and demonstrate the software to two-photon microscopy images of a living mouse brain. By applying the developed visualization software and algorithms to two-photon microscope images of the mouse brain, we identified a set of feature values that distinguish characteristic structures such as soma, dendrites and apical dendrites in mouse brain. Also, the visualization interface was compared to conventional 1D/2D transfer function system. [Conclusions]We have developed a visualization tool and interface that can represent 3D feature values as textures and shapes. This visualization system allows the analysis and characterization of the higher-dimensional feature values of living tissues at the micron level and will contribute to new discoveries in basic biology and clinical medicine.
机译:[背景]皮质神经元的树突广泛分布在皮质的几层中。最近开发的双光子显微镜系统能够可视化大脑深层内的神经元形态,并从活组织中产生大量体积成像数据。 [方法]为了可视化探索树突的三维(3D)结构以及大脑中神经元之间的连通性,我们基于使用体积渲染特征空间的新传递函数设计,提出了3D图像的可视化软件和界面。该软件可以可视化从成像数据中提取的形状和纹理的多维描述符,以表征组织。它还允许对大型数据集进行有效的分析和可视化。 [结果]我们将该软件应用于活体小鼠大脑的双光子显微镜图像并进行了演示。通过将开发的可视化软件和算法应用于小鼠脑的双光子显微镜图像,我们确定了一组特征值,这些特征值可区分小鼠脑中的特征结构,例如躯体,树突和顶端树突。此外,可视化界面与常规1D / 2D传递函数系统进行了比较。 [结论]我们开发了可视化工具和界面,可以将3D特征值表示为纹理和形状。该可视化系统可以在微米水平上分析和表征生物组织的高维特征值,并将有助于基础生物学和临床医学的新发现。

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