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Computational exploration of cis-regulatory modules in rhythmic expression data using the Exploration of Distinctive CREs and CRMs (EDCC) and CRM Network Generator (CNG) programs

机译:使用独特的CRE和CRM的探索(EDCC)和 CRM网络生成器(CNG)程序对节奏表达数据中的顺式调节模块进行计算探索

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摘要

Understanding the effect of cis-regulatory elements (CRE) and clusters of CREs, which are called cis-regulatory modules (CRM), in eukaryotic gene expression is a challenge of computational biology. We developed two programs that allow simple, fast and reliable analysis of candidate CREs and CRMs that may affect specific gene expression and that determine positional features between individual CREs within a CRM. The first program, “Exploration of Distinctive CREs and CRMs” (EDCC), correlates candidate CREs and CRMs with specific gene expression patterns. For pairs of CREs, EDCC also determines positional preferences of the single CREs in relation to each other and to the transcriptional start site. The second program, “CRM Network Generator” (CNG), prioritizes these positional preferences using a neural network and thus allows unbiased rating of the positional preferences that were determined by EDCC. We tested these programs with data from a microarray study of circadian gene expression in Arabidopsis thaliana. Analyzing more than 1.5 million pairwise CRE combinations, we found 22 candidate combinations, of which several contained known clock promoter elements together with elements that had not been identified as relevant to circadian gene expression before. CNG analysis further identified positional preferences of these CRE pairs, hinting at positional information that may be relevant for circadian gene expression. Future wet lab experiments will have to determine which of these combinations confer daytime specific circadian gene expression.
机译:理解顺式调控元件(CRE)和CRE簇(称为顺式调控模块(CRM))在真核基因表达中的作用是计算生物学的挑战。我们开发了两个程序,可以对可能影响特定基因表达的候选CRE和CRM进行简单,快速和可靠的分析,并确定CRM中单个CRE之间的位置特征。第一个程序“独特的CRE和CRM的探索”(EDCC)将候选CRE和CRM与特定的基因表达模式相关联。对于成对的CRE,EDCC还可以确定单个CRE相对于彼此以及相对于转录起始位点的位置偏好。第二个程序“ CRM网络生成器”(CNG)使用神经网络对这些位置偏好进行优先级排序,从而允许对由EDCC确定的位置偏好进行无偏评分。我们用拟南芥中昼夜节律基因表达的微阵列研究数据测试了这些程序。分析了超过150万对成对的CRE组合,我们发现了22个候选组合,其中几个包含已知的时钟启动子元件以及之前尚未被确定与昼夜节律基因表达相关的元件。 CNG分析进一步确定了这些CRE对的位置偏好,暗示了可能与昼夜节律基因表达有关的位置信息。未来的湿实验室实验将必须确定这些组合中的哪一种赋予白天特定的昼夜节律基因表达。

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