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HGGA:层次引导基因组组装器。

HGGA: hierarchical guided genome assembler.

机构信息

Department of Computer Science, Helsinki Institute for Information Technology HIIT, University of Helsinki, Helsinki, Finland.

出版信息

BMC Bioinformatics. 2022 May 7;23(1):167. doi: 10.1186/s12859-022-04701-2.

Abstract

BACKGROUND

De novo genome assembly typically produces a set of contigs instead of the complete genome. Thus additional data such as genetic linkage maps, optical maps, or Hi-C data is needed to resolve the complete structure of the genome. Most of the previous work uses the additional data to order and orient contigs.

RESULTS

Here we introduce a framework to guide genome assembly with additional data. Our approach is based on clustering the reads, such that each read in each cluster originates from nearby positions in the genome according to the additional data. These sets are then assembled independently and the resulting contigs are further assembled in a hierarchical manner. We implemented our approach for genetic linkage maps in a tool called HGGA.

CONCLUSIONS

Our experiments on simulated and real Pacific Biosciences long reads and genetic linkage maps show that HGGA produces a more contiguous assembly with less contigs and from 1.2 to 9.8 times higher NGA50 or N50 than a plain assembly of the reads and 1.03 to 6.5 times higher NGA50 or N50 than a previous approach integrating genetic linkage maps with contig assembly. Furthermore, also the correctness of the assembly remains similar or improves as compared to an assembly using only the read data.

摘要

背景

从头基因组组装通常会产生一组 contigs,而不是完整的基因组。因此,需要额外的数据,如遗传连锁图谱、光学图谱或 Hi-C 数据,以确定基因组的完整结构。以前的大多数工作都使用额外的数据来对 contigs 进行排序和定向。

结果

在这里,我们介绍了一个使用额外数据指导基因组组装的框架。我们的方法基于对 reads 进行聚类,使得每个聚类中的每个 read 根据额外的数据来自基因组的附近位置。然后独立地对这些集合进行组装,并以分层的方式进一步组装得到的 contigs。我们在一个名为 HGGA 的工具中实现了我们的方法,用于遗传连锁图谱。

结论

我们在模拟和真实的 Pacific Biosciences 长 reads 和遗传连锁图谱上的实验表明,HGGA 产生的组装结果更加连续,contigs 更少,NGA50 或 N50 比读取的纯组装高出 1.2 到 9.8 倍,比以前的方法将遗传连锁图谱与 contig 组装相结合高出 1.03 到 6.5 倍。此外,与仅使用读取数据的组装相比,组装的正确性也保持相似或提高。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/40d4/9077837/97dcff3619c7/12859_2022_4701_Fig1_HTML.jpg

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