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Mining Characteristic Relations Bind to RNA Secondary Structures

机译:绑定到RNA二级结构的挖掘特征关系

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The identification of RNA secondary structures has been among the most exciting recent developments in biology and medical science. It has been recognized that there is an abundance of functional structures with frameshifting, regulation of translation, and splicing functions. However, the inherent signal for secondary structures is weak and generally not straightforward due to complex interleaving substrings. This makes it difficult to explore their potential functions from various structure data. Our approach, based on a collection of predicted RNA secondary structures, allows us to efficiently capture interesting characteristic relations in RNA and bring out the top-ranked rules for specified association groups. Our results not only point to a number of interesting associations and include a brief biological interpretation to them. It assists biologists in sorting out the most significant characteristic structure patterns and predicting structure–function relationships in RNA.
机译:RNA二级结构的鉴定一直是生物学和医学领域最激动人心的最新进展。已经认识到,存在具有移码,翻译调节和拼接功能的大量功能结构。然而,由于复杂的交织子串,用于二级结构的固有信号微弱并且通常不直接。这使得很难从各种结构数据中探索其潜在功能。我们的方法基于一系列预测的RNA二级结构,可让我们有效地捕获RNA中有趣的特征关系,并为指定的缔合组找出最重要的规则。我们的结果不仅指出了许多有趣的关联,还包括对它们的简要生物学解释。它协助生物学家整理出最重要的特征结构模式,并预测RNA中的结构与功能的关系。

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