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A hybrid computational method for the identification of cell cycle-regulated genes

机译:一种用于鉴定细胞周期调节基因的混合计算方法

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Gene expression microarrays are the most commonly available source of high-throughput biological data. They have been widely employed in recent years for the definition of cell cycle regulated (or periodically expressed) subsets of the genome in a number of different organisms. These have driven the development of various computational methods for identifying periodical expressed genes. However, the agreement is remarkably poor when different computational methods are applied to the same data. In view of this, we are motivated to propose herein a hybrid computational method targeting the identification of periodically expressed genes, which is based on a hybrid aggregation of estimations, generated by different computational methods. The proposed hybrid method is benchmarked against three other computational methods for the identification of periodically expressed genes: statistical tests for regulation and periodicity and a combined test for regulation and periodicity. The hybrid method is shown, together with the combined test, to statistically significantly outperform the statistical test for periodicity. However, the hybrid method is also demonstrated to be significantly better than the combined test for regulation and periodicity.
机译:基因表达微阵列是最常见的高通量生物数据来源。近年来,它们已被广泛使用的细胞周期定义(或周期性地表达)在许多不同的生物中的基因组的子集。这些已经推动了用于鉴定期间表达基因的各种计算方法的发展。但是,当不同的计算方法应用于相同数据时,协议非常差。鉴于此,我们在本文中提出了一种靶向定期表达基因的混合计算方法,其基于由不同计算方法产生的估计的杂交聚集。所提出的混合方法是针对三种其他计算方法的基准测试,用于鉴定定期表达基因:用于调节和周期性的统计测试和调节和周期性的组合试验。将混合方法与组合测试一起显示,以统计上显着优于周期性的统计测试。然而,杂种方法也表明比调节和周期性的组合试验显着更好。

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