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虚拟显微镜下的定量病理学:历史、应用和展望。

Quantitative pathology in virtual microscopy: history, applications, perspectives.

机构信息

Institute of Pathology, University Hospital Freiburg, Germany.

出版信息

Acta Histochem. 2013 Jul;115(6):527-32. doi: 10.1016/j.acthis.2012.12.002. Epub 2013 Jan 11.

Abstract

With the emerging success of commercially available personal computers and the rapid progress in the development of information technologies, morphometric analyses of static histological images have been introduced to improve our understanding of the biology of diseases such as cancer. First applications have been quantifications of immunohistochemical expression patterns. In addition to object counting and feature extraction, laws of thermodynamics have been applied in morphometric calculations termed syntactic structure analysis. Here, one has to consider that the information of an image can be calculated for separate hierarchical layers such as single pixels, cluster of pixels, segmented small objects, clusters of small objects, objects of higher order composed of several small objects. Using syntactic structure analysis in histological images, functional states can be extracted and efficiency of labor in tissues can be quantified. Image standardization procedures, such as shading correction and color normalization, can overcome artifacts blurring clear thresholds. Morphometric techniques are not only useful to learn more about biological features of growth patterns, they can also be helpful in routine diagnostic pathology. In such cases, entropy calculations are applied in analogy to theoretical considerations concerning information content. Thus, regions with high information content can automatically be highlighted. Analysis of the "regions of high diagnostic value" can deliver in the context of clinical information, site of involvement and patient data (e.g. age, sex), support in histopathological differential diagnoses. It can be expected that quantitative virtual microscopy will open new possibilities for automated histological support. Automated integrated quantification of histological slides also serves for quality assurance. The development and theoretical background of morphometric analyses in histopathology are reviewed, as well as their application and potential future implementation in virtual microscopy.

摘要

随着商业上可用的个人电脑的兴起和信息技术的快速发展,形态计量学分析已被引入静态组织学图像,以提高我们对癌症等疾病生物学的理解。最初的应用是对免疫组织化学表达模式进行定量。除了目标计数和特征提取外,热力学定律还被应用于形态计量学计算,称为句法结构分析。在这里,人们必须考虑到图像的信息可以针对单独的分层进行计算,例如单个像素、像素簇、分割的小物体、小物体簇、由几个小物体组成的更高阶物体。在组织学图像中使用句法结构分析,可以提取功能状态并量化组织中的劳动效率。图像标准化程序,如阴影校正和颜色归一化,可以克服模糊清晰阈值的伪影。形态计量技术不仅有助于更多地了解生长模式的生物学特征,而且在常规诊断病理学中也很有帮助。在这种情况下,熵计算被应用于类似于关于信息内容的理论考虑。因此,可以自动突出具有高信息量的区域。在临床信息、受累部位和患者数据(例如年龄、性别)的背景下分析“具有高诊断价值的区域”,可以在组织病理学鉴别诊断中提供支持。可以预期,定量虚拟显微镜将为自动化组织学支持开辟新的可能性。组织学幻灯片的自动综合量化也可用于质量保证。本文回顾了组织病理学中形态计量学分析的发展和理论背景,以及它们在虚拟显微镜中的应用和潜在的未来实施。

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