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Evaluation of nine bioinformatic platforms using a viral model for RNA secondary structure prediction

机译:使用病毒模型评估9种生物信息平台的RNA二级结构

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RNA secondary (2D) structures are essential for cellular processes including protein translation; indeed some RNA viral pathogens use this strategy during replication cycle. Among Flaviviridae family, Hepatitis C Virus (HCV) presents a well experimentally-characterized secondary structure called IRES (Internal Ribosome Entry Site), which could be used as a Viral model for evaluating the accuracy RNA 2D structure in silico tools; the choice of free-available platforms is a principal concern because standard approaches for single-sequence RNA secondary structure prediction are dissimilar, training their parameters with known RNA structures that do not always include viral sequences. Here, we assessed the accuracy of nine web servers using the HCV IRES domain II. The platforms used were classified in three categories according to S and PPV values obtained. The lowest values were observed with IPKNOT 1.2.1 (NUPACK), Kinefold, VsFold 5.23 and CentroidHomfold, while IPKNOT 1.2.1 (CONTRAfold), IPKNOT 1.2.1 (McCaskill) and ContextFold 1.2.1 had acceptable computing output. Finally, MFOLD and RNAfold based on thermodynamic, RNAstructure (MaxExpect) and CentroidFold based on statistical weights, showed the highest accuracy with a similar topology to the expected structure, although these tools did not predict correctly all base-pairings. Further modifications in these platforms will be necessary to improve the RNA 2D structure prediction in viral models and others with higher RNA topology complexities.
机译:RNA二级(2D)结构对于包括蛋白质翻译在内的细胞过程至关重要。实际上,某些RNA病毒病原体在复制周期中采用了这种策略。在黄病毒科中,丙型肝炎病毒(HCV)呈现出一种实验性良好的二级结构,称为IRES(内部核糖体进入位点),可用作计算机模型中评估RNA 2D结构准确性的病毒模型。可用平台的选择是一个主要的问题,因为单序列RNA二级结构预测的标准方法是不同的,使用不总是包含病毒序列的已知RNA结构来训练其参数。在这里,我们使用HCV IRES域II评估了九台Web服务器的准确性。根据获得的S和PPV值,将使用的平台分为三类。使用IPKNOT 1.2.1(NUPACK),Kinefold,VsFold 5.23和CentroidHomfold观察到最低值,而IPKNOT 1.2.1(CONTRAfold),IPKNOT 1.2.1(McCaskill)和ContextFold 1.2.1具有可接受的计算输出。最后,尽管这些工具不能正确预测所有碱基配对,但基于热力学的MFOLD和RNAfold,基于统计权重的RNAstructure(MaxExpect)和CentroidFold具有与预期结构相似的拓扑结构,显示了最高的准确性。这些平台上的进一步修改对于改善病毒模型和其他具有较高RNA拓扑复杂性的模型中的RNA 2D结构预测将是必要的。

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