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Comparative study of whole exome sequencing-based copy number variation detection tools

机译:基于全外壳测序的拷贝数变异检测工具的比较研究

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With the rapid development of whole exome sequencing (WES), an increasing number of tools are being proposed for copy number variation (CNV) detection based on this technique. However, no comprehensive guide is available for the use of these tools in clinical settings, which renders them inapplicable in practice. To resolve this problem, in this study, we evaluated the performances of four WES-based CNV tools, and established a guideline for the recommendation of a suitable tool according to the application requirements. In this study, first, we selected four WES-based CNV detection tools: CoNIFER, cn.MOPS, CNVkit and exomeCopy. Then, we evaluated their performances in terms of three aspects: sensitivity and specificity, overlapping consistency and computational costs. From this evaluation, we obtained four main results: (1) The sensitivity increases and subsequently stabilizes as the coverage or CNV size increases, while the specificity decreases. (2) CoNIFER performs better for CNV insertions than for CNV deletions, while the remaining tools exhibit the opposite trend. (3) CoNIFER, cn.MOPS and CNVkit realize satisfactory overlapping consistency, which indicates their results are trustworthy. (4) CoNIFER has the best space complexity and cn.MOPS has the best time complexity among these four tools. Finally, we established a guideline for tools’ usage according to these results. No available tool performs excellently under all conditions; however, some tools perform excellently in some scenarios. Users can obtain a CNV tool recommendation from our paper according to the targeted CNV size, the CNV type or computational costs of their projects, as presented in Table 1, which is helpful even for users with limited knowledge of computer science.
机译:随着整个Exome测序(WES)的快速发展,提出了基于该技术的拷贝数变化(CNV)检测的越来越多的工具。但是,没有全面的指导可用于在临床环境中使用这些工具,这在实践中将其易于使用。为了解决这个问题,在本研究中,我们评估了基于WES的四个CNV工具的表演,并根据应用要求建立了合适工具的建议的指导。在本研究中,首先,我们选择了四个基于WES的CNV检测工具:COIFER,CN.MOPS,CNVKIT和EXOMECOPY。然后,我们在三个方面评估了他们的性能:敏感性和特异性,重叠的一致性和计算成本。从该评估中,我们获得了四个主要结果:(1)敏感性增加并随后稳定,因为覆盖范围或CNV尺寸增加,而特异性降低。 (2)针叶树对CNV插入的表现优于CNV缺失,而其余工具表现出相反的趋势。 (3)针叶树,CN.MOPS和CNVKIT实现了令人满意的重叠一致性,这表明其结果是值得信赖的。 (4)针叶树具有最佳空间复杂性,CN.MOPS在这四种工具中具有最佳时间复杂性。最后,我们根据这些结果建立了工具用途的指导。在所有条件下,任何可用的工具都没有表现出色;但是,某些工具在某些情况下卓越地表现出色。用户可以根据目标的CNV大小,其项目的CNV类型或计算成本获得CNV工具推荐,如表1所示,即使对于计算机科学知识有限的用户也有用。

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