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Characterizing the state of the art in the computational assignment of gene function: lessons from the first critical assessment of functional annotation (CAFA)

机译:在基因功能的计算分配中表征最新技术:功能注释(CAFA)的首次关键评估中的教训

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摘要

The assignment of gene function remains a difficult but important task in computational biology. The establishment of the first Critical Assessment of Functional Annotation (CAFA) was aimed at increasing progress in the field. We present an independent analysis of the results of CAFA, aimed at identifying challenges in assessment and at understanding trends in prediction performance. We found that well-accepted methods based on sequence similarity (i.e., BLAST) have a dominant effect. Many of the most informative predictions turned out to be either recovering existing knowledge about sequence similarity or were "post-dictions" already documented in the literature. These results indicate that deep challenges remain in even defining the task of function assignment, with a particular difficulty posed by the problem of defining function in a way that is not dependent on either flawed gold standards or the input data itself. In particular, we suggest that using the Gene Ontology (or other similar systematizations of function) as a gold standard is unlikely to be the way forward.
机译:基因功能的分配在计算生物学中仍然是困难而重要的任务。建立第一个功能注释的关键评估(CAFA)旨在提高该领域的进展。我们对CAFA的结果进行了独立分析,旨在确定评估中的挑战并了解预测绩效的趋势。我们发现,基于序列相似性的公认方法(即BLAST)具有显著作用。事实证明,许多最有用的预测要么是在恢复有关序列相似性的现有知识,要么是文献中已记录的“后预测”。这些结果表明,甚至在定义功能分配任务时仍然存在着严峻的挑战,特别是困难在于以不依赖于有缺陷的黄金标准或输入数据本身的方式定义功能的问题。特别是,我们建议使用基因本体论(或其他类似的功能系统化)作为黄金标准不太可能成为前进的道路。

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