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MetaSV: an accurate and integrative structural-variant caller for next generation sequencing

机译:MetaSV:用于下一代测序的准确而完整的结构变异调用者

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A Summary: Structural variations (SVs) are large genomic rearrangements that vary significantly in size, making them challenging to detect with the relatively short reads from next-generation sequencing (NGS). Different SV detection methods have been developed; however, each is limited to specific kinds of SVs with varying accuracy and resolution. Previous works have attempted to combine different methods, but they still suffer from poor accuracy particularly for insertions. We propose MetaSV, an integrated SV caller which leverages multiple orthogonal SV signals for high accuracy and resolution. MetaSV proceeds by merging SVs from multiple tools for all types of SVs. It also analyzes soft-clipped reads from alignment to detect insertions accurately since existing tools underestimate insertion SVs. Local assembly in combination with dynamic programming is used to improve breakpoint resolution. Paired-end and coverage information is used to predict SV genotypes. Using simulation and experimental data, we demonstrate the effectiveness of MetaSV across various SV types and sizes.
机译:简介:结构变异(SV)是大的基因组重排,其大小差异显着,使其难以通过下一代测序(NGS)较短的读数进行检测。已经开发了不同的SV检测方法。但是,每种都限于具有不同精度和分辨率的特定种类的SV。先前的作品曾尝试结合不同的方法,但是它们仍然存在精度差的问题,尤其是对于插入而言。我们提出MetaSV,这是一个集成的SV调用程序,它利用多个正交SV信号来实现高精度和高分辨率。 MetaSV通过合并来自多种工具的所有类型的SV进行。由于现有工具低估了插入SV,因此它还可以分析对齐中的软剪切读取以准确检测插入。将本地程序集与动态编程结合使用可提高断点分辨率。配对末端和覆盖率信息用于预测SV基因型。使用仿真和实验数据,我们证明了MetaSV在各种SV类型和尺寸上的有效性。

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