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An empirical Bayes approach for analysis of diverse periodic trends in time-course gene expression data

机译:经验贝叶斯方法分析时程基因表达数据中各种周期性趋势

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摘要

Motivation: There is a substantial body of works in the biology literature that seeks to characterize the cyclic behavior of genes during cell division. Gene expression microarrays made it possible to measure the expression profiles of thousands of genes simultaneously in time-course experiments to assess changes in the expression levels of genes over time. In this context, the commonly used procedures for testing include the permutation test by de Lichtenberg et al. and the Fisher's G-test, both of which are designed to evaluate periodicity against noise. However, it is possible that a gene of interest may have expression that is neither cyclic nor just noise. Thus, there is a need for a new test for periodicity that can identify cyclic patterns against not only noise but also other non-cyclic patterns such as linear, quadratic or higher order polynomial patterns. Results: To address this weakness, we have introduced an empirical Bayes approach to test for periodicity and compare its performance in terms of sensitivity and specificity with that of the permutation test and Fisher's G-test through extensive simulations and by application to a set of time-course experiments on the Schizosaccharomyces pombe cell-cycle gene expression. We use 'conserved' and 'cycling' genes by Lu et al. to assess the sensitivity and CESR genes by Chenet al. to assess the specificity of our new empirical Bayes method.
机译:动机:生物学文献中有大量工作试图描述细胞分裂过程中基因的循环行为。基因表达微阵列可以在时程实验中同时测量数千种基因的表达谱,以评估基因表达水平随时间的变化。在这种情况下,常用的测试程序包括de Lichtenberg等人的置换测试。以及Fisher的G检验,两者均旨在评估噪声的周期性。但是,感兴趣的基因可能具有既不是环状的也不只是噪声的表达。因此,需要一种新的周期性测试,该测试不仅可以针对噪声而且还可以针对其他非周期性模式(例如线性,二次或更高阶多项式模式)识别循环模式。结果:为解决这一弱点,我们引入了经验贝叶斯方法来测试周期性,并通过广泛的模拟并应用于一组时间,比较其在敏感性和特异性与置换测试和费舍尔G检验方面的表现。裂殖酵母细胞周期基因表达的过程实验。我们使用Lu等人的“保守”和“循环”基因。由Chenet等人评估敏感性和CESR基因。评估我们新的经验贝叶斯方法的特异性。

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