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A Systems Approach to Refine Disease Taxonomy by Integrating Phenotypic and Molecular Networks

机译:通过整合表型和分子网络来完善疾病分类的系统方法

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摘要

The International Classification of Diseases (ICD) relies on clinical features and lags behind the current understanding of the molecular specificity of disease pathobiology, necessitating approaches that incorporate growing biomedical data for classifying diseases to meet the needs of precision medicine. Our analysis revealed that the heterogeneous molecular diversity of disease chapters and the blurred boundary between disease categories in ICD should be further investigated. Here, we propose a new classification of diseases (NCD) by developing an algorithm that predicts the additional categories of a disease by integrating multiple networks consisting of disease phenotypes and their molecular profiles. With statistical validations from phenotype-genotype associations and interactome networks, we demonstrate that NCD improves disease specificity owing to its overlapping categories and polyhierarchical structure. Furthermore, NCD captures the molecular diversity of diseases and defines clearer boundaries in terms of both phenotypic similarity and molecular associations, establishing a rational strategy to reform disease taxonomy.
机译:国际疾病分类(ICD)依赖于临床特征,并且落后于当前对疾病病理生物学分子特异性的理解,因此需要采用不断增长的生物医学数据对疾病进行分类的方法,以满足精密医学的需求。我们的分析表明,ICD中疾病章节的异质分子多样性和疾病类别之间的模糊边界应进一步研究。在这里,我们通过开发一种算法来提出新的疾病分类(NCD),该算法通过整合由疾病表型及其分子概况组成的多个网络来预测疾病的其他类别。通过从表型-基因型关联和相互作用组网络进行的统计验证,我们证明了NCD由于其重叠的类别和多层次结构而改善了疾病特异性。此外,NCD捕获了疾病的分子多样性,并在表型相似性和分子关联方面定义了更清晰的界限,从而建立了合理的策略来改革疾病分类法。

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