Cargando…
Gene Duplication in the Sugarcane Genome: A Case Study of Allele Interactions and Evolutionary Patterns in Two Genic Regions
Sugarcane (Saccharum spp.) is highly polyploid and aneuploid. Modern cultivars are derived from hybridization between S. officinarum and S. spontaneum. This combination results in a genome exhibiting variable ploidy among different loci, a huge genome size (~10 Gb) and a high content of repetitive r...
Autores principales: | , , , , , , , , , , , , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Frontiers Media S.A.
2019
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6514446/ https://www.ncbi.nlm.nih.gov/pubmed/31134109 http://dx.doi.org/10.3389/fpls.2019.00553 |
_version_ | 1783417883288666112 |
---|---|
author | Sforça, Danilo Augusto Vautrin, Sonia Cardoso-Silva, Claudio Benicio Mancini, Melina Cristina Romero-da Cruz, María Victoria Pereira, Guilherme da Silva Conte, Mônica Bellec, Arnaud Dahmer, Nair Fourment, Joelle Rodde, Nathalie Van Sluys, Marie-Anne Vicentini, Renato Garcia, Antônio Augusto Franco Forni-Martins, Eliana Regina Carneiro, Monalisa Sampaio Hoffmann, Hermann Paulo Pinto, Luciana Rossini Landell, Marcos Guimarães de Andrade Vincentz, Michel Berges, Helene de Souza, Anete Pereira |
author_facet | Sforça, Danilo Augusto Vautrin, Sonia Cardoso-Silva, Claudio Benicio Mancini, Melina Cristina Romero-da Cruz, María Victoria Pereira, Guilherme da Silva Conte, Mônica Bellec, Arnaud Dahmer, Nair Fourment, Joelle Rodde, Nathalie Van Sluys, Marie-Anne Vicentini, Renato Garcia, Antônio Augusto Franco Forni-Martins, Eliana Regina Carneiro, Monalisa Sampaio Hoffmann, Hermann Paulo Pinto, Luciana Rossini Landell, Marcos Guimarães de Andrade Vincentz, Michel Berges, Helene de Souza, Anete Pereira |
author_sort | Sforça, Danilo Augusto |
collection | PubMed |
description | Sugarcane (Saccharum spp.) is highly polyploid and aneuploid. Modern cultivars are derived from hybridization between S. officinarum and S. spontaneum. This combination results in a genome exhibiting variable ploidy among different loci, a huge genome size (~10 Gb) and a high content of repetitive regions. An approach using genomic, transcriptomic, and genetic mapping can improve our knowledge of the behavior of genetics in sugarcane. The hypothetical HP600 and Centromere Protein C (CENP-C) genes from sugarcane were used to elucidate the allelic expression and genomic and genetic behaviors of this complex polyploid. The physically linked side-by-side genes HP600 and CENP-C were found in two different homeologous chromosome groups with ploidies of eight and ten. The first region (Region01) was a Sorghum bicolor ortholog region with all haplotypes of HP600 and CENP-C expressed, but HP600 exhibited an unbalanced haplotype expression. The second region (Region02) was a scrambled sugarcane sequence formed from different noncollinear genes containing partial duplications of HP600 and CENP-C (paralogs). This duplication resulted in a non-expressed HP600 pseudogene and a recombined fusion version of CENP-C and the orthologous gene Sobic.003G299500 with at least two chimeric gene haplotypes expressed. It was also determined that it occurred before Saccharum genus formation and after the separation of sorghum and sugarcane. A linkage map was constructed using markers from nonduplicated Region01 and for the duplication (Region01 and Region02). We compare the physical and linkage maps, demonstrating the possibility of mapping markers located in duplicated regions with markers in nonduplicated region. Our results contribute directly to the improvement of linkage mapping in complex polyploids and improve the integration of physical and genetic data for sugarcane breeding programs. Thus, we describe the complexity involved in sugarcane genetics and genomics and allelic dynamics, which can be useful for understanding complex polyploid genomes. |
format | Online Article Text |
id | pubmed-6514446 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2019 |
publisher | Frontiers Media S.A. |
record_format | MEDLINE/PubMed |
spelling | pubmed-65144462019-05-27 Gene Duplication in the Sugarcane Genome: A Case Study of Allele Interactions and Evolutionary Patterns in Two Genic Regions Sforça, Danilo Augusto Vautrin, Sonia Cardoso-Silva, Claudio Benicio Mancini, Melina Cristina Romero-da Cruz, María Victoria Pereira, Guilherme da Silva Conte, Mônica Bellec, Arnaud Dahmer, Nair Fourment, Joelle Rodde, Nathalie Van Sluys, Marie-Anne Vicentini, Renato Garcia, Antônio Augusto Franco Forni-Martins, Eliana Regina Carneiro, Monalisa Sampaio Hoffmann, Hermann Paulo Pinto, Luciana Rossini Landell, Marcos Guimarães de Andrade Vincentz, Michel Berges, Helene de Souza, Anete Pereira Front Plant Sci Plant Science Sugarcane (Saccharum spp.) is highly polyploid and aneuploid. Modern cultivars are derived from hybridization between S. officinarum and S. spontaneum. This combination results in a genome exhibiting variable ploidy among different loci, a huge genome size (~10 Gb) and a high content of repetitive regions. An approach using genomic, transcriptomic, and genetic mapping can improve our knowledge of the behavior of genetics in sugarcane. The hypothetical HP600 and Centromere Protein C (CENP-C) genes from sugarcane were used to elucidate the allelic expression and genomic and genetic behaviors of this complex polyploid. The physically linked side-by-side genes HP600 and CENP-C were found in two different homeologous chromosome groups with ploidies of eight and ten. The first region (Region01) was a Sorghum bicolor ortholog region with all haplotypes of HP600 and CENP-C expressed, but HP600 exhibited an unbalanced haplotype expression. The second region (Region02) was a scrambled sugarcane sequence formed from different noncollinear genes containing partial duplications of HP600 and CENP-C (paralogs). This duplication resulted in a non-expressed HP600 pseudogene and a recombined fusion version of CENP-C and the orthologous gene Sobic.003G299500 with at least two chimeric gene haplotypes expressed. It was also determined that it occurred before Saccharum genus formation and after the separation of sorghum and sugarcane. A linkage map was constructed using markers from nonduplicated Region01 and for the duplication (Region01 and Region02). We compare the physical and linkage maps, demonstrating the possibility of mapping markers located in duplicated regions with markers in nonduplicated region. Our results contribute directly to the improvement of linkage mapping in complex polyploids and improve the integration of physical and genetic data for sugarcane breeding programs. Thus, we describe the complexity involved in sugarcane genetics and genomics and allelic dynamics, which can be useful for understanding complex polyploid genomes. Frontiers Media S.A. 2019-05-07 /pmc/articles/PMC6514446/ /pubmed/31134109 http://dx.doi.org/10.3389/fpls.2019.00553 Text en Copyright © 2019 Sforça, Vautrin, Cardoso-Silva, Mancini, Romero-da Cruz, Pereira, Conte, Bellec, Dahmer, Fourment, Rodde, Van Sluys, Vicentini, Garcia, Forni-Martins, Carneiro, Hoffmann, Pinto, Landell, Vincentz, Berges and de Souza. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms. |
spellingShingle | Plant Science Sforça, Danilo Augusto Vautrin, Sonia Cardoso-Silva, Claudio Benicio Mancini, Melina Cristina Romero-da Cruz, María Victoria Pereira, Guilherme da Silva Conte, Mônica Bellec, Arnaud Dahmer, Nair Fourment, Joelle Rodde, Nathalie Van Sluys, Marie-Anne Vicentini, Renato Garcia, Antônio Augusto Franco Forni-Martins, Eliana Regina Carneiro, Monalisa Sampaio Hoffmann, Hermann Paulo Pinto, Luciana Rossini Landell, Marcos Guimarães de Andrade Vincentz, Michel Berges, Helene de Souza, Anete Pereira Gene Duplication in the Sugarcane Genome: A Case Study of Allele Interactions and Evolutionary Patterns in Two Genic Regions |
title | Gene Duplication in the Sugarcane Genome: A Case Study of Allele Interactions and Evolutionary Patterns in Two Genic Regions |
title_full | Gene Duplication in the Sugarcane Genome: A Case Study of Allele Interactions and Evolutionary Patterns in Two Genic Regions |
title_fullStr | Gene Duplication in the Sugarcane Genome: A Case Study of Allele Interactions and Evolutionary Patterns in Two Genic Regions |
title_full_unstemmed | Gene Duplication in the Sugarcane Genome: A Case Study of Allele Interactions and Evolutionary Patterns in Two Genic Regions |
title_short | Gene Duplication in the Sugarcane Genome: A Case Study of Allele Interactions and Evolutionary Patterns in Two Genic Regions |
title_sort | gene duplication in the sugarcane genome: a case study of allele interactions and evolutionary patterns in two genic regions |
topic | Plant Science |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6514446/ https://www.ncbi.nlm.nih.gov/pubmed/31134109 http://dx.doi.org/10.3389/fpls.2019.00553 |
work_keys_str_mv | AT sforcadaniloaugusto geneduplicationinthesugarcanegenomeacasestudyofalleleinteractionsandevolutionarypatternsintwogenicregions AT vautrinsonia geneduplicationinthesugarcanegenomeacasestudyofalleleinteractionsandevolutionarypatternsintwogenicregions AT cardososilvaclaudiobenicio geneduplicationinthesugarcanegenomeacasestudyofalleleinteractionsandevolutionarypatternsintwogenicregions AT mancinimelinacristina geneduplicationinthesugarcanegenomeacasestudyofalleleinteractionsandevolutionarypatternsintwogenicregions AT romerodacruzmariavictoria geneduplicationinthesugarcanegenomeacasestudyofalleleinteractionsandevolutionarypatternsintwogenicregions AT pereiraguilhermedasilva geneduplicationinthesugarcanegenomeacasestudyofalleleinteractionsandevolutionarypatternsintwogenicregions AT contemonica geneduplicationinthesugarcanegenomeacasestudyofalleleinteractionsandevolutionarypatternsintwogenicregions AT bellecarnaud geneduplicationinthesugarcanegenomeacasestudyofalleleinteractionsandevolutionarypatternsintwogenicregions AT dahmernair geneduplicationinthesugarcanegenomeacasestudyofalleleinteractionsandevolutionarypatternsintwogenicregions AT fourmentjoelle geneduplicationinthesugarcanegenomeacasestudyofalleleinteractionsandevolutionarypatternsintwogenicregions AT roddenathalie geneduplicationinthesugarcanegenomeacasestudyofalleleinteractionsandevolutionarypatternsintwogenicregions AT vansluysmarieanne geneduplicationinthesugarcanegenomeacasestudyofalleleinteractionsandevolutionarypatternsintwogenicregions AT vicentinirenato geneduplicationinthesugarcanegenomeacasestudyofalleleinteractionsandevolutionarypatternsintwogenicregions AT garciaantonioaugustofranco geneduplicationinthesugarcanegenomeacasestudyofalleleinteractionsandevolutionarypatternsintwogenicregions AT fornimartinselianaregina geneduplicationinthesugarcanegenomeacasestudyofalleleinteractionsandevolutionarypatternsintwogenicregions AT carneiromonalisasampaio geneduplicationinthesugarcanegenomeacasestudyofalleleinteractionsandevolutionarypatternsintwogenicregions AT hoffmannhermannpaulo geneduplicationinthesugarcanegenomeacasestudyofalleleinteractionsandevolutionarypatternsintwogenicregions AT pintolucianarossini geneduplicationinthesugarcanegenomeacasestudyofalleleinteractionsandevolutionarypatternsintwogenicregions AT landellmarcosguimaraesdeandrade geneduplicationinthesugarcanegenomeacasestudyofalleleinteractionsandevolutionarypatternsintwogenicregions AT vincentzmichel geneduplicationinthesugarcanegenomeacasestudyofalleleinteractionsandevolutionarypatternsintwogenicregions AT bergeshelene geneduplicationinthesugarcanegenomeacasestudyofalleleinteractionsandevolutionarypatternsintwogenicregions AT desouzaanetepereira geneduplicationinthesugarcanegenomeacasestudyofalleleinteractionsandevolutionarypatternsintwogenicregions |