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Simple Shared Motifs (SSM) in conserved region of promoters: a new approach to identify co-regulation patterns

机译:促销领域保守区的简单共享主题(SSM):一种识别共调控模式的新方法

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Background Regulation of gene expression plays a pivotal role in cellular functions. However, understanding the dynamics of transcription remains a challenging task. A host of computational approaches have been developed to identify regulatory motifs, mainly based on the recognition of DNA sequences for transcription factor binding sites. Recent integration of additional data from genomic analyses or phylogenetic footprinting has significantly improved these methods. Results Here, we propose a different approach based on the compilation of Simple Shared Motifs (SSM), groups of sequences defined by their length and similarity and present in conserved sequences of gene promoters. We developed an original algorithm to search and count SSM in pairs of genes. An exceptional number of SSM is considered as a common regulatory pattern. The SSM approach is applied to a sample set of genes and validated using functional gene-set enrichment analyses. We demonstrate that the SSM approach selects genes that are over-represented in specific biological categories (Ontology and Pathways) and are enriched in co-expressed genes. Finally we show that genes co-expressed in the same tissue or involved in the same biological pathway have increased SSM values. Conclusions Using unbiased clustering of genes, Simple Shared Motifs analysis constitutes an original contribution to provide a clearer definition of expression networks.
机译:背景技术基因表达的调节在细胞功能中起着枢轴作用。但是,了解转录的动态仍然是一个具有挑战性的任务。已经开发了许多计算方法来鉴定调节基序,主要是基于识别转录因子结合位点的DNA序列。最近从基因组分析或系统发育脚印的额外数据的整合显着改善了这些方法。结果在此,我们提出了一种基于简单共享基序(SSM)的编辑的不同方法,由其长度和相似性定义的序列组,并存在于基因启动子的保守序列中。我们开发了一种原始算法,用于搜索和计数SSM成对的基因。卓越的SSM被视为常见的监管模式。 SSM方法应用于样品组基因并使用功能基因设定的富集分析进行验证。我们证明SSM方法选择在特定的生物类别(本体和途径)中过度代表的基因,并富集在共表达基因中。最后,我们表明在同一组织中或参与相同的生物途径中共同表达的基因增加了SSM值。结论使用非偏见的基因聚类,简单的共享主题分析构成了提供了更清晰的表达网络定义的原始贡献。

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