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1.
Genome Biol ; 25(1): 26, 2024 01 19.
Article in English | MEDLINE | ID: mdl-38243222

ABSTRACT

Potato is one of the world's major staple crops, and like many important crop plants, it has a polyploid genome. Polyploid haplotype assembly poses a major computational challenge. We introduce a novel strategy for the assembly of polyploid genomes and present an assembly of the autotetraploid potato cultivar Altus. Our method uses low-depth sequencing data from an offspring population to achieve chromosomal clustering and haplotype phasing on the assembly graph. Our approach generates high-quality assemblies of individual chromosomes with haplotype-specific sequence resolution of whole chromosome arms and can be applied in common breeding scenarios where collections of offspring are available.


Subject(s)
Solanum tuberosum , Tetraploidy , Humans , Haplotypes , Sequence Analysis, DNA , Solanum tuberosum/genetics , Plant Breeding , Polyploidy
2.
iScience ; 25(6): 104461, 2022 Jun 17.
Article in English | MEDLINE | ID: mdl-35692633

ABSTRACT

An important challenge in genome assembly is haplotype phasing, that is, to reconstruct the different haplotype sequences of an individual genome. Phasing becomes considerably more difficult with increasing ploidy, which makes polyploid phasing a notoriously hard computational problem. We present a novel genetic phasing method for plant breeding with the aim to phase two deep-sequenced parental samples with the help of a large number of progeny samples sequenced at low depth. The key ideas underlying our approach are to (i) integrate the individually weak Mendelian progeny signals with a Bayesian log-likelihood model, (ii) cluster alleles according to their likelihood of co-occurrence, and (iii) assign them to haplotypes via an interval scheduling approach. We show on two deep-sequenced parental and 193 low-depth progeny potato samples that our approach computes high-quality sparse phasings and that it scales to whole genomes.

3.
Science ; 372(6537)2021 04 02.
Article in English | MEDLINE | ID: mdl-33632895

ABSTRACT

Long-read and strand-specific sequencing technologies together facilitate the de novo assembly of high-quality haplotype-resolved human genomes without parent-child trio data. We present 64 assembled haplotypes from 32 diverse human genomes. These highly contiguous haplotype assemblies (average minimum contig length needed to cover 50% of the genome: 26 million base pairs) integrate all forms of genetic variation, even across complex loci. We identified 107,590 structural variants (SVs), of which 68% were not discovered with short-read sequencing, and 278 SV hotspots (spanning megabases of gene-rich sequence). We characterized 130 of the most active mobile element source elements and found that 63% of all SVs arise through homology-mediated mechanisms. This resource enables reliable graph-based genotyping from short reads of up to 50,340 SVs, resulting in the identification of 1526 expression quantitative trait loci as well as SV candidates for adaptive selection within the human population.


Subject(s)
Genetic Variation , Genome, Human , Haplotypes , Female , Genotype , High-Throughput Nucleotide Sequencing , Humans , INDEL Mutation , Interspersed Repetitive Sequences , Male , Population Groups/genetics , Quantitative Trait Loci , Retroelements , Sequence Analysis, DNA , Sequence Inversion , Whole Genome Sequencing
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