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Computational identification of functional introns: high positional conservation of introns that harbor RNA genes

机译:功能性内含子的计算鉴定:带有RNA基因的内含子的高度位置保守

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摘要

An appreciable fraction of introns is thought to have some function, but there is no obvious way to predict which specific intron is likely to be functional. We hypothesize that functional introns experience a different selection regime than non-functional ones and will therefore show distinct evolutionary histories. In particular, we expect functional introns to be more resistant to loss, and that this would be reflected in high conservation of their position with respect to the coding sequence. To test this hypothesis, we focused on introns whose function comes about from microRNAs and snoRNAs that are embedded within their sequence. We built a data set of orthologous genes across 28 eukaryotic species, reconstructed the evolutionary histories of their introns and compared functional introns with the rest of the introns. We found that, indeed, the position of microRNA- and snoRNA-bearing introns is significantly more conserved. In addition, we found that both families of RNA genes settled within introns early during metazoan evolution. We identified several easily computable intronic properties that can be used to detect functional introns in general, thereby suggesting a new strategy to pinpoint non-coding cellular functions.
机译:相当一部分内含子被认为具有一定的功能,但是没有明显的方法预测哪个特定内含子可能起作用。我们假设功能性内含子会经历与非功能性内含子不同的选择机制,因此会显示出不同的进化历史。特别地,我们期望功能内含子对丢失具有更强的抵抗力,并且这将反映在它们相对于编码序列的位置的高度保守中。为了检验该假设,我们集中于内含子,其功能来自嵌入其序列中的microRNA和snoRNA。我们建立了一个跨28个真核物种直系同源基因的数据集,重建了它们内含子的进化历史,并将功能内含子与其余内含子进行了比较。我们发现,确实,带有microRNA和snoRNA的内含子的位置明显更保守。此外,我们发现这两个RNA基因家族在后生动物进化的早期就固定在了内含子中。我们确定了几个可以容易地计算出的内含子特性,这些特性可以用于一般地检测功能内含子,从而提出了一种精确定位非编码细胞功能的新策略。

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