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Genome-wide searching with base-pairing kernel functions for noncoding RNAs: computational and expression analysis of snoRNA families in Caenorhabditis elegans

机译:全基因组搜索与碱基配对内核功能的非编码RNA:秀丽隐杆线虫中snoRNA家族的计算和表达分析

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摘要

Despite the accumulating research on noncoding RNAs (ncRNAs), it is likely that we are seeing only the tip of the iceberg regarding our understanding of the functions and the regulatory roles served by ncRNAs in cellular metabolism, pathogenesis and host-pathogen interactions. Therefore, more powerful computational and experimental tools for analyzing ncRNAs need to be developed. To this end, we propose novel kernel functions, called base-pairing profile local alignment (BPLA) kernels, for analyzing functional ncRNA sequences using support vector machines (SVMs). We extend the local alignment kernels for amino acid sequences in order to handle RNA sequences by using STRAL's; scoring function, which takes into account sequence similarities as well as upstream and downstream base-pairing probabilities, thus enabling us to model secondary structures of RNA sequences. As a test of the performance of BPLA kernels, we applied our kernels to the problem of discriminating members of an RNA family from nonmembers using SVMs. The results indicated that the discrimination ability of our kernels is stronger than that of other existing methods. Furthermore, we demonstrated the applicability of our kernels to the problem of genome-wide search of snoRNA families in the Caenorhabditis elegans genome, and confirmed that the expression is valid in 14 out of 48 of our predicted candidates by using qRT-PCR. Finally, highly expressed six candidates were identified as the original target regions by DNA sequencing.
机译:尽管对非编码RNA(ncRNA)的研究不断积累,但就我们对ncRNA在细胞代谢,发病机制和宿主-病原体相互作用中所发挥的功能和调节作用的理解而言,我们可能只看到了冰山一角。因此,需要开发更强大的计算和实验工具来分析ncRNA。为此,我们提出了一种新的内核功能,称为碱基配对概况局部比对(BPLA)内核,用于使用支持向量机(SVM)分析功能性ncRNA序列。为了使用STRAL处理RNA序列,我们扩展了氨基酸序列的局部比对内核。计分功能,该功能考虑了序列相似性以及上游和下游碱基配对的可能性,因此使我们能够对RNA序列的二级结构进行建模。为了测试BPLA内核的性能,我们将内核应用于使用SVM将RNA家族成员与非成员区分开的问题。结果表明,我们的内核的识别能力强于其他现有方法。此外,我们证明了我们的内核适用于秀丽隐杆线虫基因组中snoRNA家族的全基因组搜索问题,并通过使用qRT-PCR证实了该表达在48个预测候选物中的14个有效。最后,通过DNA测序将高表达的六个候选物鉴定为原始靶区域。

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