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March 13, 2018Genome Research489 citationsOpen Access

SvABA: genome-wide detection of structural variants and indels by local assembly

JWJeremiah A. WalaPBPratiti BandopadhayayNGNoah F. Greenwald

Key Points

  • This research aims to present SvABA, a new method for efficiently detecting structural variants (SVs) and indels from genome-wide data.
  • Developed SvABA for detecting SVs from short-read sequencing data using local assembly.
  • Evaluated the performance of SvABA on the NA12878 human genome and in various cancer genomics.
  • Analyzed 344 cancer genomes to assess the prevalence of short templated-sequence insertions.
  • SvABA achieved superior sensitivity and specificity for SV detection compared to existing methods.
  • Identified short templated-sequence insertions in approximately 4% of all somatic rearrangements in analyzed cancer genomes.
  • Successfully detected sites of viral integration and cancer driver alterations containing medium-sized SVs (50-300 bp).

Abstract

Structural variants (SVs), including small insertion and deletion variants (indels), are challenging to detect through standard alignment-based variant calling methods. Sequence assembly offers a powerful approach to identifying SVs, but is difficult to apply at scale genome-wide for SV detection due to its computational complexity and the difficulty of extracting SVs from assembly contigs. We describe SvABA, an efficient and accurate method for detecting SVs from short-read sequencing data using genome-wide local assembly with low memory and computing requirements. We evaluated SvABA's performance on the NA12878 human genome and in simulated and real cancer genomes. SvABA demonstrates superior sensitivity and specificity across a large spectrum of SVs and substantially improves detection performance for variants in the 20-300 bp range, compared with existing methods. SvABA also identifies complex somatic rearrangements with chains of short (<1000 bp) templated-sequence insertions copied from distant genomic regions. We applied SvABA to 344 cancer genomes from 11 cancer types and found that short templated-sequence insertions occur in ∼4% of all somatic rearrangements. Finally, we demonstrate that SvABA can identify sites of viral integration and cancer driver alterations containing medium-sized (50-300 bp) SVs.

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Cite This Study

Wala et al. (2018) studied this question.

synapsesocial.com/papers/6a015368e92f4a033c856595https://doi.org/10.1101/gr.221028.117
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