Unraveling the complex genome of Saccharum spontaneum using Polyploid Gene Assembler

dc.contributor.authorNascimento, Leandro Costa
dc.contributor.authorYanagui, Karina
dc.contributor.authorJosé, Juliana
dc.contributor.authorCamargo, Eduardo L. O.
dc.contributor.authorGrassi, Maria Carolina B.
dc.contributor.authorCunha, Camila P.
dc.contributor.authorBressiani, José Antônio
dc.contributor.authorCarvalho, Guilherme M. A.
dc.contributor.authorPrado, Paula F.
dc.contributor.authorMieczkowski, Piotr
dc.contributor.authorPereira, Gonçalo A. G.
dc.contributor.authorCarazzolle, Marcelo F.
dc.contributor.authorCarvalho, Carlos Roberto
dc.date.accessioned2019-04-11T14:21:04Z
dc.date.available2019-04-11T14:21:04Z
dc.date.issued2019-02
dc.description.abstractThe Polyploid Gene Assembler (PGA), developed and tested in this study, represents a new strategy to perform gene-space assembly from complex genomes using low coverage DNA sequencing. The pipeline integrates reference-assisted loci and de novo assembly strategies to construct high-quality sequences focused on gene content. Pipeline validation was conducted with wheat (Triticum aestivum), a hexaploid species, using barley (Hordeum vulgare) as reference, that resulted in the identification of more than 90% of genes and several new genes. Moreover, PGA was used to assemble gene content in Saccharum spontaneum species, a parental lineage for hybrid sugarcane cultivars. Saccharum spontaneum gene sequence obtained was used to reference-guided transcriptome analysis of six different tissues. A total of 39,234 genes were identified, 60.4% clustered into known grass gene families. Thirty-seven gene families were expanded when compared with other grasses, three of them highlighted by the number of gene copies potentially involved in initial development and stress response. In addition, 3,108 promoters (many showing tissue specificity) were identified in this work. In summary, PGA can reconstruct high-quality gene sequences from polyploid genomes, as shown for wheat and S. spontaneum species, and it is more efficient than conventional genome assemblers using low coverage DNA sequencing.en
dc.formatpdfpt-BR
dc.identifier.issn1756-1663
dc.identifier.urihttp://dx.doi.org/10.1093/dnares/dsz001
dc.identifier.urihttp://www.locus.ufv.br/handle/123456789/24480
dc.language.isoengpt-BR
dc.publisherDNA Researchpt-BR
dc.relation.ispartofseriesp. 1- 12, fev. 2019pt-BR
dc.rightsOpen Accesspt-BR
dc.subjectSugarcanept-BR
dc.subjectGenome assemblypt-BR
dc.subjectTranscriptomept-BR
dc.subjectGene discoverypt-BR
dc.subjectNew assemblerpt-BR
dc.titleUnraveling the complex genome of Saccharum spontaneum using Polyploid Gene Assembleren
dc.typeArtigopt-BR

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