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Finding a Common Motif of RNA Sequences Using Genetic Programming: The GeRNAMo System

机译:使用遗传编程查找RNA序列的通用基元:GeRNAMo系统

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We focus on finding a consensus motif of a set of homologous or functionally related RNA molecules. Recent approaches to this problem have been limited to simple motifs, require sequence alignment, and make prior assumptions concerning the data set. We use genetic programming to predict RNA consensus motifs based solely on the data set. Our system-dubbed GeRNAMo (Genetic programming of RNA Motifs)-predicts the most common motifs without sequence alignment and is capable of dealing with any motif size. Our program only requires the maximum number of stems in the motif and, if prior knowledge is available, the user can specify other attributes of the motif (e.g., the range of the motif''s minimum and maximum sizes), thereby increasing both sensitivity and speed. We describe several experiments using either ferritin iron response element (IRE), signal recognition particle (SRP), or microRNA sequences showing that the most common motif is found repeatedly and that our system offers substantial advantages over previous methods.
机译:我们着重于寻找一组同源或功能相关的RNA分子的共有基序。解决该问题的最新方法仅限于简单的图案,需要进行序列比对,并对数据集进行事先假设。我们仅使用数据集使用遗传程序来预测RNA共有基序。我们的系统称为GeRNAMo(RNA主题的遗传编程),可以预测最常见的基序而无需序列比对,并且能够处理任何基序大小。我们的程序仅要求模体中茎的最大数量,并且如果可以使用先验知识,则用户可以指定模体的其他属性(例如,模体的最小和最大尺寸范围),从而提高灵敏度和速度。我们描述了使用铁蛋白铁反应元件(IRE),信号识别颗粒(SRP)或microRNA序列进行的几个实验,这些实验表明,重复发现了最常见的基序,并且我们的系统比以前的方法具有很多优势。

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