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BCFtools/RoH: a hidden Markov model approach for detecting autozygosity from next-generation sequencing data

机译:BCFtools / RoH:一种隐藏的马尔可夫模型方法用于从下一代测序数据中检测自噬性

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摘要

>Summary: Runs of homozygosity (RoHs) are genomic stretches of a diploid genome that show identical alleles on both chromosomes. Longer RoHs are unlikely to have arisen by chance but are likely to denote autozygosity, whereby both copies of the genome descend from the same recent ancestor. Early tools to detect RoH used genotype array data, but substantially more information is available from sequencing data. Here, we present and evaluate BCFtools/RoH, an extension to the BCFtools software package, that detects regions of autozygosity in sequencing data, in particular exome data, using a hidden Markov model. By applying it to simulated data and real data from the 1000 Genomes Project we estimate its accuracy and show that it has higher sensitivity and specificity than existing methods under a range of sequencing error rates and levels of autozygosity.>Availability and implementation: BCFtools/RoH and its associated binary/source files are freely available from .>Contact: or >Supplementary information: are available at Bioinformatics online.
机译:>摘要:纯合运行(RoHs)是二倍体基因组的基因组延伸,在两个染色体上均显示相同的等位基因。较长的RoH不太可能是偶然产生的,但可能表示自合子,因此基因组的两个副本都来自同一近代祖先。早期的检测RoH的工具使用了基因型阵列数据,但是从测序数据中可以获得更多的信息。在这里,我们介绍并评估BCFtools / RoH,它是BCFtools软件包的扩展,它使用隐马尔可夫模型检测测序数据(尤其是外显子组数据)中的自合子区域。通过将其应用于来自1000个基因组计划的模拟数据和真实数据,我们估计了其准确性,并表明在一定的测序错误率和自噬水平下,它比现有方法具有更高的灵敏度和特异性。>可用性和实现:BCFtools / RoH及其关联的二进制文件/源文件可从以下网站免费获得。>联系方式:或>补充信息:可从在线生物信息学获得。

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