The computational prediction of gene and protein function is rapidly gaining ground as a central undertaking in computational biology. Making sense of the flood of genomic data requires fast and reliable annotation. Many ingenious algorithms have been devised to infer a protein's function from its amino acid sequence, 3D structure and chromosomal location of the encoding genes. However, there are significant challenges in assessing how well these programs perform. In this article we explore those challenges and review our own attempt at assessing the performance of those programs. We conclude that the task is far from complete and that a critical assessment of the performance of function prediction programs is necessary to make true progress in computational function prediction.

译文

作为计算生物学的一项核心工作,基因和蛋白质功能的计算预测正在迅速发展。理解基因组数据的泛滥需要快速可靠的注释。已经设计了许多巧妙的算法来从蛋白质的氨基酸序列,3D结构和编码基因的染色体位置推断蛋白质的功能。但是,在评估这些程序的性能方面存在重大挑战。在本文中,我们探讨了这些挑战,并回顾了我们自己评估这些程序性能的尝试。我们得出的结论是,该任务远未完成,并且必须对功能预测程序的性能进行严格评估,才能在计算功能预测方面取得真正的进展。

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