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1.
Nature ; 588(7837): 277-283, 2020 12.
Article in English | MEDLINE | ID: mdl-33239791

ABSTRACT

Advances in genomics have expedited the improvement of several agriculturally important crops but similar efforts in wheat (Triticum spp.) have been more challenging. This is largely owing to the size and complexity of the wheat genome1, and the lack of genome-assembly data for multiple wheat lines2,3. Here we generated ten chromosome pseudomolecule and five scaffold assemblies of hexaploid wheat to explore the genomic diversity among wheat lines from global breeding programs. Comparative analysis revealed extensive structural rearrangements, introgressions from wild relatives and differences in gene content resulting from complex breeding histories aimed at improving adaptation to diverse environments, grain yield and quality, and resistance to stresses4,5. We provide examples outlining the utility of these genomes, including a detailed multi-genome-derived nucleotide-binding leucine-rich repeat protein repertoire involved in disease resistance and the characterization of Sm16, a gene associated with insect resistance. These genome assemblies will provide a basis for functional gene discovery and breeding to deliver the next generation of modern wheat cultivars.


Subject(s)
Genetic Variation , Genome, Plant/genetics , Genomics , Internationality , Plant Breeding/methods , Triticum/genetics , Acclimatization/genetics , Animals , Centromere/genetics , Centromere/metabolism , Chromosome Mapping , Cloning, Molecular , DNA Copy Number Variations/genetics , DNA Transposable Elements/genetics , Edible Grain/genetics , Edible Grain/growth & development , Genes, Plant/genetics , Genetic Introgression , Haplotypes , Insecta/pathogenicity , NLR Proteins/genetics , Plant Diseases/genetics , Plant Proteins/genetics , Polymorphism, Single Nucleotide/genetics , Polyploidy , Triticum/classification , Triticum/growth & development
2.
Nat Ecol Evol ; 2(6): 1000-1008, 2018 06.
Article in English | MEDLINE | ID: mdl-29686237

ABSTRACT

Accelerating international trade and climate change make pathogen spread an increasing concern. Hymenoscyphus fraxineus, the causal agent of ash dieback, is a fungal pathogen that has been moving across continents and hosts from Asian to European ash. Most European common ash trees (Fraxinus excelsior) are highly susceptible to H. fraxineus, although a minority (~5%) have partial resistance to dieback. Here, we assemble and annotate a H. fraxineus draft genome, which approaches chromosome scale. Pathogen genetic diversity across Europe and in Japan, reveals a strong bottleneck in Europe, though a signal of adaptive diversity remains in key host interaction genes. We find that the European population was founded by two divergent haploid individuals. Divergence between these haplotypes represents the ancestral polymorphism within a large source population. Subsequent introduction from this source would greatly increase adaptive potential of the pathogen. Thus, further introgression of H. fraxineus into Europe represents a potential threat and Europe-wide biological security measures are needed to manage this disease.


Subject(s)
Ascomycota/genetics , Fraxinus/microbiology , Genome, Fungal , Plant Diseases/microbiology , Europe , Haplotypes/genetics
3.
Genome Res ; 27(5): 885-896, 2017 05.
Article in English | MEDLINE | ID: mdl-28420692

ABSTRACT

Advances in genome sequencing and assembly technologies are generating many high-quality genome sequences, but assemblies of large, repeat-rich polyploid genomes, such as that of bread wheat, remain fragmented and incomplete. We have generated a new wheat whole-genome shotgun sequence assembly using a combination of optimized data types and an assembly algorithm designed to deal with large and complex genomes. The new assembly represents >78% of the genome with a scaffold N50 of 88.8 kb that has a high fidelity to the input data. Our new annotation combines strand-specific Illumina RNA-seq and Pacific Biosciences (PacBio) full-length cDNAs to identify 104,091 high-confidence protein-coding genes and 10,156 noncoding RNA genes. We confirmed three known and identified one novel genome rearrangements. Our approach enables the rapid and scalable assembly of wheat genomes, the identification of structural variants, and the definition of complete gene models, all powerful resources for trait analysis and breeding of this key global crop.


Subject(s)
Contig Mapping/methods , Genome, Plant , Molecular Sequence Annotation/methods , Plant Proteins/genetics , Translocation, Genetic , Triticum/genetics , Algorithms , Contig Mapping/standards , Molecular Sequence Annotation/standards , Polymorphism, Genetic , Polyploidy
4.
Proc Natl Acad Sci U S A ; 114(6): E913-E921, 2017 02 07.
Article in English | MEDLINE | ID: mdl-28096351

ABSTRACT

Comprehensive reverse genetic resources, which have been key to understanding gene function in diploid model organisms, are missing in many polyploid crops. Young polyploid species such as wheat, which was domesticated less than 10,000 y ago, have high levels of sequence identity among subgenomes that mask the effects of recessive alleles. Such redundancy reduces the probability of selection of favorable mutations during natural or human selection, but also allows wheat to tolerate high densities of induced mutations. Here we exploited this property to sequence and catalog more than 10 million mutations in the protein-coding regions of 2,735 mutant lines of tetraploid and hexaploid wheat. We detected, on average, 2,705 and 5,351 mutations per tetraploid and hexaploid line, respectively, which resulted in 35-40 mutations per kb in each population. With these mutation densities, we identified an average of 23-24 missense and truncation alleles per gene, with at least one truncation or deleterious missense mutation in more than 90% of the captured wheat genes per population. This public collection of mutant seed stocks and sequence data enables rapid identification of mutations in the different copies of the wheat genes, which can be combined to uncover previously hidden variation. Polyploidy is a central phenomenon in plant evolution, and many crop species have undergone recent genome duplication events. Therefore, the general strategy and methods developed herein can benefit other polyploid crops.


Subject(s)
Genome, Plant/genetics , Mutation , Polyploidy , Triticum/genetics , DNA Mutational Analysis/methods , Evolution, Molecular , Exome/genetics , Plant Breeding , Plant Proteins/genetics , Selection, Genetic
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