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Chromosome-scale, haplotype-resolved assembly of human genomes

Nature Biotechnology, ISSN: 1546-1696, Vol: 39, Issue: 3, Page: 309-312
2021
  • 105
    Citations
  • 0
    Usage
  • 218
    Captures
  • 4
    Mentions
  • 0
    Social Media
Metric Options:   Counts1 Year3 Year

Metrics Details

  • Citations
    105
  • Captures
    218
  • Mentions
    4
    • News Mentions
      3
      • News
        3
    • Blog Mentions
      1
      • Blog
        1

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Abstract Advances in sequencing technology have facilitated population-scale long-read structural variant (SV) detection. Arguably, one of the main challenges in population-scale analysis is developing effective

Article Description

Haplotype-resolved or phased genome assembly provides a complete picture of genomes and their complex genetic variations. However, current algorithms for phased assembly either do not generate chromosome-scale phasing or require pedigree information, which limits their application. We present a method named diploid assembly (DipAsm) that uses long, accurate reads and long-range conformation data for single individuals to generate a chromosome-scale phased assembly within 1 day. Applied to four public human genomes, PGP1, HG002, NA12878 and HG00733, DipAsm produced haplotype-resolved assemblies with minimum contig length needed to cover 50% of the known genome (NG50) up to 25 Mb and phased ~99.5% of heterozygous sites at 98–99% accuracy, outperforming other approaches in terms of both contiguity and phasing completeness. We demonstrate the importance of chromosome-scale phased assemblies for the discovery of structural variants (SVs), including thousands of new transposon insertions, and of highly polymorphic and medically important regions such as the human leukocyte antigen (HLA) and killer cell immunoglobulin-like receptor (KIR) regions. DipAsm will facilitate high-quality precision medicine and studies of individual haplotype variation and population diversity.

Bibliographic Details

Garg, Shilpa; Fungtammasan, Arkarachai; Carroll, Andrew; Chou, Mike; Schmitt, Anthony; Zhou, Xiang; Mac, Stephen; Peluso, Paul; Hatas, Emily; Ghurye, Jay; Maguire, Jared; Mahmoud, Medhat; Cheng, Haoyu; Heller, David; Zook, Justin M; Moemke, Tobias; Marschall, Tobias; Sedlazeck, Fritz J; Aach, John; Chin, Chen-Shan; Church, George M; Li, Heng

Springer Science and Business Media LLC

Biochemistry, Genetics and Molecular Biology; Chemical Engineering; Immunology and Microbiology; Engineering

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