Literature DB >> 16697665

Hierarchical microimaging for multiscale analysis of large vascular networks.

Stefan Heinzer1, Thomas Krucker, Marco Stampanoni, Rafael Abela, Eric P Meyer, Alexandra Schuler, Philipp Schneider, Ralph Müller.   

Abstract

There is a wide range of diseases and normal physiological processes that are associated with alterations of the vascular system in organs. Ex vivo imaging of large vascular networks became feasible with recent developments in microcomputed tomography (microCT). Current methods permit to visualize only limited numbers of physically excised regions of interests (ROIs) from larger samples. We developed a method based on modified vascular corrosion casting (VCC), scanning electron microscopy (SEM), and desktop and synchrotron radiation microCT (SRmicroCT) technologies to image vasculature at increasing levels of resolution, also referred to as hierarchical imaging. This novel approach allows nondestructive 3D visualization and quantification of large microvascular networks, while retaining a precise anatomical context for ROIs scanned at very high resolution. Scans of entire mouse brain VCCs were performed at 16-microm resolution with a desktop microCT system. Custom-made navigation software with a ROI selection tool enabled the identification of anatomical brain structures and precise placement of multiple ROIs. These were then scanned at 1.4-microm voxel size using SRmicroCT and a local tomography setup. A framework was developed for fast sample positioning, precise selection of ROIs, and sequential high-throughput scanning of a large numbers of brain VCCs. Despite the use of local tomography, exceptional image quality was achieved with SRmicroCT. This method enables qualitative and quantitative assessment of vasculature at unprecedented resolution and volume with relatively high throughput, opening new possibilities to study vessel architecture and vascular alterations in models of disease.

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Year:  2006        PMID: 16697665     DOI: 10.1016/j.neuroimage.2006.03.043

Source DB:  PubMed          Journal:  Neuroimage        ISSN: 1053-8119            Impact factor:   6.556


  51 in total

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8.  Nogo-A regulates vascular network architecture in the postnatal brain.

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10.  Episcopic 3D Imaging Methods: Tools for Researching Gene Function.

Authors:  Wolfgang J Weninger; Stefan H Geyer
Journal:  Curr Genomics       Date:  2008-06       Impact factor: 2.236

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