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Assembly of the 373k gene space of the polyploid sugarcane genome reveals reservoirs of functional diversity in the world's leading biomass crop

BACKGROUND: Sugarcane cultivars are polyploid interspecific hybrids of giant genomes, typically with 10–13 sets of chromosomes from 2 Saccharum species. The ploidy, hybridity, and size of the genome, estimated to have >10 Gb, pose a challenge for sequencing. RESULTS: Here we present a gene space...

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Autores principales: Souza, Glaucia Mendes, Van Sluys, Marie-Anne, Lembke, Carolina Gimiliani, Lee, Hayan, Margarido, Gabriel Rodrigues Alves, Hotta, Carlos Takeshi, Gaiarsa, Jonas Weissmann, Diniz, Augusto Lima, Oliveira, Mauro de Medeiros, Ferreira, Sávio de Siqueira, Nishiyama, Milton Yutaka, ten-Caten, Felipe, Ragagnin, Geovani Tolfo, Andrade, Pablo de Morais, de Souza, Robson Francisco, Nicastro, Gianlucca Gonçalves, Pandya, Ravi, Kim, Changsoo, Guo, Hui, Durham, Alan Mitchell, Carneiro, Monalisa Sampaio, Zhang, Jisen, Zhang, Xingtan, Zhang, Qing, Ming, Ray, Schatz, Michael C, Davidson, Bob, Paterson, Andrew H, Heckerman, David
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6884061/
https://www.ncbi.nlm.nih.gov/pubmed/31782791
http://dx.doi.org/10.1093/gigascience/giz129
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author Souza, Glaucia Mendes
Van Sluys, Marie-Anne
Lembke, Carolina Gimiliani
Lee, Hayan
Margarido, Gabriel Rodrigues Alves
Hotta, Carlos Takeshi
Gaiarsa, Jonas Weissmann
Diniz, Augusto Lima
Oliveira, Mauro de Medeiros
Ferreira, Sávio de Siqueira
Nishiyama, Milton Yutaka
ten-Caten, Felipe
Ragagnin, Geovani Tolfo
Andrade, Pablo de Morais
de Souza, Robson Francisco
Nicastro, Gianlucca Gonçalves
Pandya, Ravi
Kim, Changsoo
Guo, Hui
Durham, Alan Mitchell
Carneiro, Monalisa Sampaio
Zhang, Jisen
Zhang, Xingtan
Zhang, Qing
Ming, Ray
Schatz, Michael C
Davidson, Bob
Paterson, Andrew H
Heckerman, David
author_facet Souza, Glaucia Mendes
Van Sluys, Marie-Anne
Lembke, Carolina Gimiliani
Lee, Hayan
Margarido, Gabriel Rodrigues Alves
Hotta, Carlos Takeshi
Gaiarsa, Jonas Weissmann
Diniz, Augusto Lima
Oliveira, Mauro de Medeiros
Ferreira, Sávio de Siqueira
Nishiyama, Milton Yutaka
ten-Caten, Felipe
Ragagnin, Geovani Tolfo
Andrade, Pablo de Morais
de Souza, Robson Francisco
Nicastro, Gianlucca Gonçalves
Pandya, Ravi
Kim, Changsoo
Guo, Hui
Durham, Alan Mitchell
Carneiro, Monalisa Sampaio
Zhang, Jisen
Zhang, Xingtan
Zhang, Qing
Ming, Ray
Schatz, Michael C
Davidson, Bob
Paterson, Andrew H
Heckerman, David
author_sort Souza, Glaucia Mendes
collection PubMed
description BACKGROUND: Sugarcane cultivars are polyploid interspecific hybrids of giant genomes, typically with 10–13 sets of chromosomes from 2 Saccharum species. The ploidy, hybridity, and size of the genome, estimated to have >10 Gb, pose a challenge for sequencing. RESULTS: Here we present a gene space assembly of SP80-3280, including 373,869 putative genes and their potential regulatory regions. The alignment of single-copy genes in diploid grasses to the putative genes indicates that we could resolve 2–6 (up to 15) putative homo(eo)logs that are 99.1% identical within their coding sequences. Dissimilarities increase in their regulatory regions, and gene promoter analysis shows differences in regulatory elements within gene families that are expressed in a species-specific manner. We exemplify these differences for sucrose synthase (SuSy) and phenylalanine ammonia-lyase (PAL), 2 gene families central to carbon partitioning. SP80-3280 has particular regulatory elements involved in sucrose synthesis not found in the ancestor Saccharum spontaneum. PAL regulatory elements are found in co-expressed genes related to fiber synthesis within gene networks defined during plant growth and maturation. Comparison with sorghum reveals predominantly bi-allelic variations in sugarcane, consistent with the formation of 2 “subgenomes” after their divergence ∼3.8–4.6 million years ago and reveals single-nucleotide variants that may underlie their differences. CONCLUSIONS: This assembly represents a large step towards a whole-genome assembly of a commercial sugarcane cultivar. It includes a rich diversity of genes and homo(eo)logous resolution for a representative fraction of the gene space, relevant to improve biomass and food production.
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spelling pubmed-68840612019-12-04 Assembly of the 373k gene space of the polyploid sugarcane genome reveals reservoirs of functional diversity in the world's leading biomass crop Souza, Glaucia Mendes Van Sluys, Marie-Anne Lembke, Carolina Gimiliani Lee, Hayan Margarido, Gabriel Rodrigues Alves Hotta, Carlos Takeshi Gaiarsa, Jonas Weissmann Diniz, Augusto Lima Oliveira, Mauro de Medeiros Ferreira, Sávio de Siqueira Nishiyama, Milton Yutaka ten-Caten, Felipe Ragagnin, Geovani Tolfo Andrade, Pablo de Morais de Souza, Robson Francisco Nicastro, Gianlucca Gonçalves Pandya, Ravi Kim, Changsoo Guo, Hui Durham, Alan Mitchell Carneiro, Monalisa Sampaio Zhang, Jisen Zhang, Xingtan Zhang, Qing Ming, Ray Schatz, Michael C Davidson, Bob Paterson, Andrew H Heckerman, David Gigascience Research BACKGROUND: Sugarcane cultivars are polyploid interspecific hybrids of giant genomes, typically with 10–13 sets of chromosomes from 2 Saccharum species. The ploidy, hybridity, and size of the genome, estimated to have >10 Gb, pose a challenge for sequencing. RESULTS: Here we present a gene space assembly of SP80-3280, including 373,869 putative genes and their potential regulatory regions. The alignment of single-copy genes in diploid grasses to the putative genes indicates that we could resolve 2–6 (up to 15) putative homo(eo)logs that are 99.1% identical within their coding sequences. Dissimilarities increase in their regulatory regions, and gene promoter analysis shows differences in regulatory elements within gene families that are expressed in a species-specific manner. We exemplify these differences for sucrose synthase (SuSy) and phenylalanine ammonia-lyase (PAL), 2 gene families central to carbon partitioning. SP80-3280 has particular regulatory elements involved in sucrose synthesis not found in the ancestor Saccharum spontaneum. PAL regulatory elements are found in co-expressed genes related to fiber synthesis within gene networks defined during plant growth and maturation. Comparison with sorghum reveals predominantly bi-allelic variations in sugarcane, consistent with the formation of 2 “subgenomes” after their divergence ∼3.8–4.6 million years ago and reveals single-nucleotide variants that may underlie their differences. CONCLUSIONS: This assembly represents a large step towards a whole-genome assembly of a commercial sugarcane cultivar. It includes a rich diversity of genes and homo(eo)logous resolution for a representative fraction of the gene space, relevant to improve biomass and food production. Oxford University Press 2019-11-29 /pmc/articles/PMC6884061/ /pubmed/31782791 http://dx.doi.org/10.1093/gigascience/giz129 Text en © The Author(s) 2019. Published by Oxford University Press. http://creativecommons.org/licenses/by/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research
Souza, Glaucia Mendes
Van Sluys, Marie-Anne
Lembke, Carolina Gimiliani
Lee, Hayan
Margarido, Gabriel Rodrigues Alves
Hotta, Carlos Takeshi
Gaiarsa, Jonas Weissmann
Diniz, Augusto Lima
Oliveira, Mauro de Medeiros
Ferreira, Sávio de Siqueira
Nishiyama, Milton Yutaka
ten-Caten, Felipe
Ragagnin, Geovani Tolfo
Andrade, Pablo de Morais
de Souza, Robson Francisco
Nicastro, Gianlucca Gonçalves
Pandya, Ravi
Kim, Changsoo
Guo, Hui
Durham, Alan Mitchell
Carneiro, Monalisa Sampaio
Zhang, Jisen
Zhang, Xingtan
Zhang, Qing
Ming, Ray
Schatz, Michael C
Davidson, Bob
Paterson, Andrew H
Heckerman, David
Assembly of the 373k gene space of the polyploid sugarcane genome reveals reservoirs of functional diversity in the world's leading biomass crop
title Assembly of the 373k gene space of the polyploid sugarcane genome reveals reservoirs of functional diversity in the world's leading biomass crop
title_full Assembly of the 373k gene space of the polyploid sugarcane genome reveals reservoirs of functional diversity in the world's leading biomass crop
title_fullStr Assembly of the 373k gene space of the polyploid sugarcane genome reveals reservoirs of functional diversity in the world's leading biomass crop
title_full_unstemmed Assembly of the 373k gene space of the polyploid sugarcane genome reveals reservoirs of functional diversity in the world's leading biomass crop
title_short Assembly of the 373k gene space of the polyploid sugarcane genome reveals reservoirs of functional diversity in the world's leading biomass crop
title_sort assembly of the 373k gene space of the polyploid sugarcane genome reveals reservoirs of functional diversity in the world's leading biomass crop
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6884061/
https://www.ncbi.nlm.nih.gov/pubmed/31782791
http://dx.doi.org/10.1093/gigascience/giz129
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