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首页> 外文期刊>BMC Genomics >Tangram: a comprehensive toolbox for mobile element insertion detection
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Tangram: a comprehensive toolbox for mobile element insertion detection

机译:七巧板:用于移动元素插入检测的综合工具箱

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Background Mobile elements (MEs) constitute greater than 50% of the human genome as a result of repeated insertion events during human genome evolution. Although most of these elements are now fixed in the population, some MEs, including ALU, L1, SVA and HERV-K elements, are still actively duplicating. Mobile element insertions (MEIs) have been associated with human genetic disorders, including Crohn’s disease, hemophilia, and various types of cancer, motivating the need for accurate MEI detection methods. To comprehensively identify and accurately characterize these variants in whole genome next-generation sequencing (NGS) data, a computationally efficient detection and genotyping method is required. Current computational tools are unable to call MEI polymorphisms with sufficiently high sensitivity and specificity, or call individual genotypes with sufficiently high accuracy. Results Here we report Tangram, a computationally efficient MEI detection program that integrates read-pair (RP) and split-read (SR) mapping signals to detect MEI events. By utilizing SR mapping in its primary detection module, a feature unique to this software, Tangram is able to pinpoint MEI breakpoints with single-nucleotide precision. To understand the role of MEI events in disease, it is essential to produce accurate individual genotypes in clinical samples. Tangram is able to determine sample genotypes with very high accuracy. Using simulations and experimental datasets, we demonstrate that Tangram has superior sensitivity, specificity, breakpoint resolution and genotyping accuracy, when compared to other, recently developed MEI detection methods. Conclusions Tangram serves as the primary MEI detection tool in the 1000 Genomes Project, and is implemented as a highly portable, memory-efficient, easy-to-use C++ computer program, built under an open-source development model.
机译:背景由于人类基因组进化过程中重复的插入事件,移动元素(ME)构成了人类基因组的50%以上。尽管这些元素中的大多数现在已经在种群中固定了,但某些ME(包括ALU,L1,SVA和HERV-K元素)仍在积极复制。移动元素插入(MEI)与人类遗传疾病有关,包括克罗恩病,血友病和各种类型的癌症,这促使人们需要精确的MEI检测方法。为了全面鉴定和准确表征下一代全基因组测序(NGS)数据中的这些变异,需要一种计算效率高的检测和基因分型方法。当前的计算工具不能以足够高的灵敏度和特异性来调用MEI多态性,或以足够高的精度来调用各个基因型。结果在这里,我们报告Tangram,这是一种计算效率很高的MEI检测程序,它集成了读取对(RP)和拆分读取(SR)映射信号以检测MEI事件。通过在其主要检测模块(该软件独有的功能)中使用SR映射,Tangram能够以单核苷酸精度查明MEI断点。要了解MEI事件在疾病中的作用,必须在临床样本中产生准确的个体基因型。七巧板能够非常准确地确定样本基因型。使用模拟和实验数据集,我们证明与其他最近开发的MEI检测方法相比,七巧板具有更高的灵敏度,特异性,断点分辨率和基因分型准确性。结束语Tangram是1000个基因组计划中的主要MEI检测工具,并被实现为在开放源代码开发模型下构建的高度可移植,内存高效,易于使用的C ++计算机程序。

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