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MindTheGap: integrated detection and assembly of short and long insertions
Guillaume Rizk1, Anaïs Gouin1, Rayan Chikhi1
1Inria/IRISA GenScale, Campus de Beaulieu, 35042 Rennes cedex, France, INRA, UMR 1349 Institut de Génétique, Environnement et Protection des Plantes, Domaine de la Motte - 35653 Le Rheu Cedex, France and Department of Computer Science and Engineering, Pennsylvania State University, PA, USA.
Motivation:
Insertions play an important role in genome evolution. However, such variants are difficult to detect from short-read sequencing data, especially when they exceed the paired-end insert size. Many approaches have been proposed to call short insertion variants based on paired-end mapping. However, there remains a lack of practical methods to detect and assemble long variants.
Results:
We propose here an original method, called MindTheGap, for the integrated detection and assembly of insertion variants from re-sequencing data. Importantly, it is designed to call insertions of any size, whether they are novel or duplicated, homozygous or heterozygous in the donor genome. MindTheGap uses an efficient k-mer-based method to detect insertion sites in a reference genome, and subsequently assemble them from the donor reads. MindTheGap showed high recall and precision on simulated datasets of various genome complexities. When applied to real Caenorhabditis elegans and human NA12878 datasets, MindTheGap detected and correctly assembled insertions >1 kb, using at most 14 GB of memory.
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