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Gene-Disease Prioritization Through Cost-Sensitive Graph-Based Methodologies

机译:基于成本敏感的图形方法的基因疾病优先化

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Finding genes associated with human genetic disorders is one of the most challenging problems in bio-medicine. In this context, to guide researchers in detecting the most reliable candidate causativegenes for the disease of interest, gene prioritization methods represent a necessary support to automatically rank genes according to their involvement in the disease under study. This problem is characterized by highly unbalanced classes (few causative and much more non-causative genes) and requires the adoption of cost-sensitive techniques to achieve reliable solutions. In this work we propose a network-based methodology for disease-gene prioritization designed to expressly cope with the data imbalance. Its validation over a benchmark composed of 708 selected medical subject headings (MeSH) diseases, shows that our approach is competitive with state-of-art methodologies, and its reduced time complexity makes its application feasible on large-size datasets.
机译:寻找与人类遗传疾病相关的基因是生物医学中最具挑战性的问题之一。在这种情况下,为了指导研究人员检测感兴趣疾病的最可靠的候选因子,基因优先化方法代表了根据他们在研究中的疾病的参与自动排名基因的必要支持。这个问题的特点是高度不平衡的类(少数致病和更不致病基因),并且需要采用成本敏感的技术来实现可靠的解决方案。在这项工作中,我们提出了一种基于网络的疾病基因优先级的方法,旨在明确应对数据不平衡。它对由708个选定的医疗主题标题(网格)疾病组成的基准测试的验证表明,我们的方法与最先进的方法具有竞争力,其减少的时间复杂性使其在大型数据集上可行的应用。

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