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Quantitative image analysis of histological sections of coronary arteries

机译:冠状动脉组织段的定量图像分析

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The study of coronary arteries has evolved from examining gross anatomy and morphology to scrutinizing micro-anatomy and cellular composition. Technological advances such as high- resolution digital microscopes and high precision cutting devices have allowed examination of coronary artery morphology and pathology at micron resolution. We have developed a software toolkit to analyze histological sections. In particular, we are currently engaged in examining normal coronary arteries in order to provide the foundation for study of remodeled tissue. The first of two coronary arteries was stained for elastin and collagen. The second coronary artery was sectioned and stained for cellular nuclei and smooth muscle. High resolution light microscopy was used to image the sections. Segmentation was accomplished initially with slice- to-slice thresholding algorithms. These segmentation techniques choose optimal threshold values by modeling the tissue as one or more distributions. Morphology and image statistics were used to further differentiate the thresholded data into different tissue categories therefore refine the results of the segmentation. Specificity/sensitivity analysis suggests that automatic segmentation can be very effective. For both tissue samples, greater than 90% specificity was achieved. Summed voxel projection and maximum intensity projection appear to be effective 3-D visualization tools. Shading methods also provide useful visualization, however it is important to incorporate combined 2-D and 3-D displays. Surface rendering techniques (e.g. color mapping) can be used for visualizing parametric data. Preliminary results are promising, but continued development of algorithms is needed.
机译:冠状动脉的研究已经从检查总解剖学和形态学中的研究表达,以仔细检查微观解剖学和细胞组合物。高分辨率数字显微镜和高精度切割装置等技术进步允许在微米分辨率下检测冠状动脉形态和病理学。我们开发了一种用于分析组织学部分的软件工具包。特别是,我们目前正在从事检查正常的冠状动脉,以便为研究改造组织的研究基础。两种冠状动脉中的第一个染色为弹性蛋白和胶原蛋白。第二冠状动脉切开并染色细胞核和平滑肌。高分辨率光学显微镜用于将部分图像图像。最初通过切片到切片阈值算法完成分割。这些分割技术通过将组织作为一个或多个分布建模来选择最佳阈值。使用形态和图像统计用于进一步将阈值数据分化为不同的组织类别,因此细化分割结果。特异性/敏感性分析表明,自动分割可能非常有效。对于两种组织样品,实现了大于90%的特异性。总结体素投影和最大强度投影似乎是有效的3-D可视化工具。着色方法还提供有用的可视化,但结合2-D和3-D显示非常重要。表面渲染技术(例如颜色映射)可用于可视化参数数据。初步结果很有希望,但需要持续发展算法。

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