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CoSREM: a graph mining algorithm for the discovery of combinatorial splicing regulatory elements

机译:CoSREM:一种图挖掘算法,用于发现组合拼接调控元件

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Alternative splicing (AS) is a post-transcriptional regulatory mechanism for gene expression regulation. Splicing decisions are affected by the combinatorial behavior of different splicing factors that bind to multiple binding sites in exons and introns. These binding sites are called splicing regulatory elements (SREs). Here we develop CoSREM (Combinatorial SRE Miner), a graph mining algorithm to discover combinatorial SREs in human exons. Our model does not assume a fixed length of SREs and incorporates experimental evidence as well to increase accuracy. CoSREM is able to identify sets of SREs and is not limited to SRE pairs as are current approaches. We identified 37 SRE sets that include both enhancer and silencer elements. We show that our results intersect with previous results, including some that are experimental. We also show that the SRE set GGGAGG and GAGGAC identified by CoSREM may play a role in exon skipping events in several tumor samples. We applied CoSREM to RNA-Seq data for multiple tissues to identify combinatorial SREs which may be responsible for exon inclusion or exclusion across tissues. The new algorithm can identify different combinations of splicing enhancers and silencers without assuming a predefined size or limiting the algorithm to find only pairs of SREs. Our approach opens new directions to study SREs and the roles that AS may play in diseases and tissue specificity.
机译:选择性剪接(AS)是一种用于基因表达调控的转录后调控机制。剪接决定受与外显子和内含子中多个结合位点结合的不同剪接因子的组合行为影响。这些结合位点称为剪接调控元件(SRE)。在这里,我们开发CoSREM(组合SRE Miner),这是一种图形挖掘算法,用于发现人外显子中的组合SRE。我们的模型未假设SRE的长度固定,并且还结合了实验证据以提高准确性。 CoSREM能够识别SRE集,并且不像当前方法那样局限于SRE对。我们确定了37个SRE集,其中包括增强器和消音器元素。我们证明了我们的结果与先前的结果相交,包括一些实验性的结果。我们还表明,由CoSREM识别的SRE集GGGAGG和GAGGAC可能在几个肿瘤样品中的外显子跳跃事件中起作用。我们将CoSREM应用于多个组织的RNA-Seq数据,以识别可能导致外显子包涵或跨组织排斥的组合SRE。新算法可以识别拼接增强器和消音器的不同组合,而无需承担预定义的大小或将算法限制为仅查找SRE对。我们的方法为研究SRE以及AS在疾病和组织特异性中的作用开辟了新的方向。

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