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Quantitative Imaging Biomarker Ontology (QIBO) for Knowledge Representation of Biomedical Imaging Biomarkers

机译:定量成像生物标志物本体论(QIBO)用于生物医学成像生物标志物的知识表示

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摘要

A widening array of novel imaging biomarkers is being developed using ever more powerful clinical and preclinical imaging modalities. These biomarkers have demonstrated effectiveness in quantifying biological processes as they occur in vivo and in the early prediction of therapeutic outcomes. However, quantitative imaging biomarker data and knowledge are not standardized, representing a critical barrier to accumulating medical knowledge based on quantitative imaging data. We use an ontology to represent, integrate, and harmonize heterogeneous knowledge across the domain of imaging biomarkers. This advances the goal of developing applications to (1) improve precision and recall of storage and retrieval of quantitative imaging-related data using standardized terminology; (2) streamline the discovery and development of novel imaging biomarkers by normalizing knowledge across heterogeneous resources; (3) effectively annotate imaging experiments thus aiding comprehension, re-use, and reproducibility; and (4) provide validation frameworks through rigorous specification as a basis for testable hypotheses and compliance tests. We have developed the Quantitative Imaging Biomarker Ontology (QIBO), which currently consists of 488 terms spanning the following upper classes: experimental subject, biological intervention, imaging agent, imaging instrument, image post-processing algorithm, biological target, indicated biology, and biomarker application. We have demonstrated that QIBO can be used to annotate imaging experiments with standardized terms in the ontology and to generate hypotheses for novel imaging biomarker–disease associations. Our results established the utility of QIBO in enabling integrated analysis of quantitative imaging data.
机译:正在使用越来越强大的临床和临床前成像方法开发越来越多的新型成像生物标记。这些生物标记物已证明可量化体内发生的生物过程以及治疗结果的早期预测。然而,定量成像生物标志物数据和知识不是标准化的,这代表了基于定量成像数据积累医学知识的关键障碍。我们使用本体来表示,整合和协调成像生物标记物领域中的异构知识。这推动了开发应用程序的目标,以:(1)使用标准化术语来提高定量和成像相关数据的存储和检索的精度和召回率; (2)通过标准化跨异构资源的知识来简化新型成像生物标记的发现和开发; (3)有效地注释成像实验,从而帮助理解,重复使用和再现性; (4)通过严格的规范提供验证框架,作为可检验假设和一致性测试的基础。我们已经开发了定量成像生物标记物本体论(QIBO),目前由488个术语组成,涵盖以下上层类别:实验对象,生物干预,成像剂,成像仪器,图像后处理算法,生物学目标,指示生物学和生物标记物应用。我们已经证明,QIBO可用于用本体中的标准化术语来注释成像实验,并为新型成像生物标记物-疾病关联产生假设。我们的结果建立了QIBO在实现定量成像数据综合分析中的实用性。

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