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An image processing approach to computing distances between RNA secondary structures dot plots

机译:一种计算RNA二级结构点图之间距离的图像处理方法

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Background Computing the distance between two RNA secondary structures can contribute in understanding the functional relationship between them. When used repeatedly, such a procedure may lead to finding a query RNA structure of interest in a database of structures. Several methods are available for computing distances between RNAs represented as strings or graphs, but none utilize the RNA representation with dot plots. Since dot plots are essentially digital images, there is a clear motivation to devise an algorithm for computing the distance between dot plots based on image processing methods. Results We have developed a new metric dubbed 'DoPloCompare', which compares two RNA structures. The method is based on comparing dot plot diagrams that represent the secondary structures. When analyzing two diagrams and motivated by image processing, the distance is based on a combination of histogram correlations and a geometrical distance measure. We introduce, describe, and illustrate the procedure by two applications that utilize this metric on RNA sequences. The first application is the RNA design problem, where the goal is to find the nucleotide sequence for a given secondary structure. Examples where our proposed distance measure outperforms others are given. The second application locates peculiar point mutations that induce significant structural alternations relative to the wild type predicted secondary structure. The approach reported in the past to solve this problem was tested on several RNA sequences with known secondary structures to affirm their prediction, as well as on a data set of ribosomal pieces. These pieces were computationally cut from a ribosome for which an experimentally derived secondary structure is available, and on each piece the prediction conveys similarity to the experimental result. Our newly proposed distance measure shows benefit in this problem as well when compared to standard methods used for assessing the distance similarity between two RNA secondary structures. Conclusion Inspired by image processing and the dot plot representation for RNA secondary structure, we have managed to provide a conceptually new and potentially beneficial metric for comparing two RNA secondary structures. We illustrated our approach on the RNA design problem, as well as on an application that utilizes the distance measure to detect conformational rearranging point mutations in an RNA sequence.
机译:背景计算两个RNA二级结构之间的距离可以有助于理解它们之间的功能关系。当重复使用时,这种过程可能导致在结构数据库中找到感兴趣的查询RNA结构。有几种方法可用于计算以字符串或图形表示的RNA之间的距离,但没有一种方法可利用点图的RNA表示。由于点图本质上是数字图像,因此存在明显动机来设计一种基于图像处理方法来计算点图之间的距离的算法。结果我们开发了一种称为“ DoPloCompare”的新指标,该指标比较了两个RNA结构。该方法基于比较代表二级结构的点图。当分析两个图并通过图像处理来激励时,距离是基于直方图相关性和几何距离度量的组合。我们将介绍,描述和说明通过两个应用程序对RNA序列使用此度量的过程。第一个应用是RNA设计问题,目的是找到给定二级结构的核苷酸序列。给出了我们提出的距离度量优于其他度量的示例。第二个应用程序定位的奇特点突变相对于野生型预测的二级结构诱导明显的结构改变。过去报道的解决此问题的方法已在具有已知二级结构的若干RNA序列上进行了测试,以确认其预测结果,并在核糖体片段数据集上进行了测试。这些片段是从核糖体上计算得到的,该核糖体具有实验衍生的二级结构,并且在每个片段上预测都传达与实验结果的相似性。与用于评估两个RNA二级结构之间距离相似性的标准方法相比,我们新提出的距离测量方法也显示了该问题的好处。结论受图像处理和点阵图表示RNA二级结构的启发,我们设法提供了一种概念上新颖且可能有益的指标,用于比较两种RNA二级结构。我们举例说明了我们在RNA设计问题上的方法,以及在利用距离测量来检测RNA序列中构象重排点突变的应用程序中的方法。

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