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Improve signal peptide prediction by using functional domain information

机译:通过使用功能域信息改善信号肽的预测

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Signal peptides are significant important in targeting the translocation of integral membrane proteins and secretory proteins. Due the high similarity between the transmembrane helices and signal peptides, classifiers have limit ability to discriminate the signal peptides from the transmembrane helices. To solve this problem, the protein functional domain information is applied in this method. For accurately identify the cleavage sites along the sequence, a subset of potential cleavage sites was firstly screened out by statistical machine learning rules, and then the final unique site was picked out according to its evolution conservation score. This method has been benchmarked on multiple datasets and the experimental results have shown its superiority.
机译:信号肽在靶向整合性膜蛋白和分泌蛋白的转运中非常重要。由于跨膜螺旋和信号肽之间的高度相似性,所以分类器具有将信号肽与跨膜螺旋区分开的有限能力。为了解决该问题,在该方法中应用了蛋白质功能域信息。为了准确地识别沿序列的切割位点,首先通过统计机器学习规则筛选出潜在的切割位点的子集,然后根据其进化保守评分挑选出最终的独特位点。该方法已在多个数据集上进行了基准测试,实验结果表明了该方法的优越性。

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