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Recognizing drosha processing sites by a two-step prediction model with structure and sequence information

机译:通过具有结构和序列信息的两步预测模型识别drosha处理站点

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Drosha is a class of RNase III enzyme plays important roles in the microRNA (miRNA) generation by cleaving primary miRNAs to release hairpin-shaped miRNA precursors. Accurately predicting the Drosha cleavage positions (i.e., processing sites) is helpful for the identification of miRNAs and the understanding of miRNA biogenesis mechanisms. In this study, we presented a Drosha processing site predictor, termed DroshaPSP, with a two-step prediction model by integrating structure and sequence features. Testing results on the Drosophila melanogaster miRNA data showed that DroshaPSP obtained a sensitivity of 0.859, a specificity of 0.999, and a Matthew's Correlation Coefficient of 0.864. We also found that the Shannon entropy is a powerful structure feature for DroshaPSP to distinguish true Drosha processing sites from the nearby pseudo processing sites effectively.
机译:Drosha是一类RNase III酶,通过裂解初级miRNA释放发夹状miRNA前体,在microRNA(miRNA)产生中发挥重要作用。准确预测Drosha切割位置(即加工位点)有助于miRNA的鉴定和对miRNA生物发生机制的了解。在这项研究中,我们通过整合结构和序列特征,提出了一个称为DroshaPSP的Drosha处理站点预测器,具有两步预测模型。果蝇miRNA数据的测试结果表明,DroshaPSP的灵敏度为0.859,特异性为0.999,马修相关系数为0.864。我们还发现,香农熵是DroshaPSP强大的结构特征,可以有效地区分真正的Drosha处理站点和附近的伪处理站点。

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