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Extended haplotype-phasing of long-read de novo genome assemblies using Hi-C
Extended haplotype-phasing of long-read de novo genome assemblies using Hi-C
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Extended haplotype-phasing of long-read de novo genome assemblies using Hi-C
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Extended haplotype-phasing of long-read de novo genome assemblies using Hi-C
Extended haplotype-phasing of long-read de novo genome assemblies using Hi-C

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Extended haplotype-phasing of long-read de novo genome assemblies using Hi-C
Extended haplotype-phasing of long-read de novo genome assemblies using Hi-C
Journal Article

Extended haplotype-phasing of long-read de novo genome assemblies using Hi-C

2021
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Overview
Haplotype-resolved genome assemblies are important for understanding how combinations of variants impact phenotypes. To date, these assemblies have been best created with complex protocols, such as cultured cells that contain a single-haplotype (haploid) genome, single cells where haplotypes are separated, or co-sequencing of parental genomes in a trio-based approach. These approaches are impractical in most situations. To address this issue, we present FALCON-Phase, a phasing tool that uses ultra-long-range Hi-C chromatin interaction data to extend phase blocks of partially-phased diploid assembles to chromosome or scaffold scale. FALCON-Phase uses the inherent phasing information in Hi-C reads, skipping variant calling, and reduces the computational complexity of phasing. Our method is validated on three benchmark datasets generated as part of the Vertebrate Genomes Project (VGP), including human, cow, and zebra finch, for which high-quality, fully haplotype-resolved assemblies are available using the trio-based approach. FALCON-Phase is accurate without having parental data and performance is better in samples with higher heterozygosity. For cow and zebra finch the accuracy is 97% compared to 80–91% for human. FALCON-Phase is applicable to any draft assembly that contains long primary contigs and phased associate contigs. Methods to produce haplotype-resolved genome assemblies often rely on access to family trios. The authors present FALCON-Phase, a tool that combines ultra-long range Hi-C chromatin interaction data with a long read de novo assembly to extend haplotype phasing to the contig or scaffold level.