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SegEM:用于高分辨率连接组学的高效图像分析。

SegEM: Efficient Image Analysis for High-Resolution Connectomics.

机构信息

Department of Connectomics, Max Planck Institute for Brain Research, Max-von-Laue-Strasse 4, 60438 Frankfurt, Germany.

Department of Connectomics, Max Planck Institute for Brain Research, Max-von-Laue-Strasse 4, 60438 Frankfurt, Germany.

出版信息

Neuron. 2015 Sep 23;87(6):1193-1206. doi: 10.1016/j.neuron.2015.09.003.

Abstract

Progress in electron microscopy-based high-resolution connectomics is limited by data analysis throughput. Here, we present SegEM, a toolset for efficient semi-automated analysis of large-scale fully stained 3D-EM datasets for the reconstruction of neuronal circuits. By combining skeleton reconstructions of neurons with automated volume segmentations, SegEM allows the reconstruction of neuronal circuits at a work hour consumption rate of about 100-fold less than manual analysis and about 10-fold less than existing segmentation tools. SegEM provides a robust classifier selection procedure for finding the best automated image classifier for different types of nerve tissue. We applied these methods to a volume of 44 × 60 × 141 μm(3) SBEM data from mouse retina and a volume of 93 × 60 × 93 μm(3) from mouse cortex, and performed exemplary synaptic circuit reconstruction. SegEM resolves the tradeoff between synapse detection and semi-automated reconstruction performance in high-resolution connectomics and makes efficient circuit reconstruction in fully-stained EM datasets a ready-to-use technique for neuroscience.

摘要

基于电子显微镜的高分辨率连接组学的进展受到数据分析通量的限制。在这里,我们提出了 SegEM,这是一个用于高效半自动分析大规模全染色 3D-EM 数据集的工具集,用于重建神经元回路。通过将神经元的骨架重建与自动体积分割相结合,SegEM 允许以比手动分析少约 100 倍、比现有分割工具少约 10 倍的工作时间消耗率重建神经元回路。SegEM 提供了一种强大的分类器选择程序,用于为不同类型的神经组织找到最佳的自动图像分类器。我们将这些方法应用于来自小鼠视网膜的 44×60×141 μm(3)SBEM 数据体积和来自小鼠皮层的 93×60×93 μm(3)数据体积,并进行了示例突触回路重建。SegEM 解决了在高分辨率连接组学中突触检测和半自动重建性能之间的权衡问题,并使完全染色的 EM 数据集的高效电路重建成为神经科学的一种即用型技术。

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