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Galactinol synthase transcriptional profile in two genotypes of Coffea canephora with contrasting tolerance to drought

Increased synthesis of galactinol and raffinose family oligosaccharides (RFOs) has been reported in vegetative tissues in response to a range of abiotic stresses. In this work, we evaluated the transcriptional profile of a Coffea canephora galactinol synthase gene (CcGolS1) in two clones that differ...

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Autores principales: Santos, Tiago Benedito Dos, de Lima, Rogério Barbosa, Nagashima, Getúlio Takashi, Petkowicz, Carmen Lucia de Oliveira, Carpentieri-Pípolo, Valéria, Pereira, Luiz Filipe Protasio, Domingues, Douglas Silva, Vieira, Luiz Gonzaga Esteves
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Sociedade Brasileira de Genética 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4530651/
https://www.ncbi.nlm.nih.gov/pubmed/26273221
http://dx.doi.org/10.1590/S1415-475738220140171
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author Santos, Tiago Benedito Dos
de Lima, Rogério Barbosa
Nagashima, Getúlio Takashi
Petkowicz, Carmen Lucia de Oliveira
Carpentieri-Pípolo, Valéria
Pereira, Luiz Filipe Protasio
Domingues, Douglas Silva
Vieira, Luiz Gonzaga Esteves
author_facet Santos, Tiago Benedito Dos
de Lima, Rogério Barbosa
Nagashima, Getúlio Takashi
Petkowicz, Carmen Lucia de Oliveira
Carpentieri-Pípolo, Valéria
Pereira, Luiz Filipe Protasio
Domingues, Douglas Silva
Vieira, Luiz Gonzaga Esteves
author_sort Santos, Tiago Benedito Dos
collection PubMed
description Increased synthesis of galactinol and raffinose family oligosaccharides (RFOs) has been reported in vegetative tissues in response to a range of abiotic stresses. In this work, we evaluated the transcriptional profile of a Coffea canephora galactinol synthase gene (CcGolS1) in two clones that differed in tolerance to water deficit in order to assess the contribution of this gene to drought tolerance. The expression of CcGolS1 in leaves was differentially regulated by water deficit, depending on the intensity of stress and the genotype. In clone 109A (drought-susceptible), the abundance of CcGolS1 transcripts decreased upon exposure to drought, reaching minimum values during recovery from severe water deficit and stress. In contrast, CcGolS1 gene expression in clone 14 (drought-tolerant) was stimulated by water deficit. Changes in galactinol and RFO content did not correlate with variation in the steady-state transcript level. However, the magnitude of increase in RFO accumulation was higher in the tolerant cultivar, mainly under severe water deficit. The finding that the drought-tolerant coffee clone showed enhanced accumulation of CcGolS1 transcripts and RFOs under water deficit suggests the possibility of using this gene to improve drought tolerance in this important crop.
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spelling pubmed-45306512015-08-13 Galactinol synthase transcriptional profile in two genotypes of Coffea canephora with contrasting tolerance to drought Santos, Tiago Benedito Dos de Lima, Rogério Barbosa Nagashima, Getúlio Takashi Petkowicz, Carmen Lucia de Oliveira Carpentieri-Pípolo, Valéria Pereira, Luiz Filipe Protasio Domingues, Douglas Silva Vieira, Luiz Gonzaga Esteves Genet Mol Biol Plant Genetics Increased synthesis of galactinol and raffinose family oligosaccharides (RFOs) has been reported in vegetative tissues in response to a range of abiotic stresses. In this work, we evaluated the transcriptional profile of a Coffea canephora galactinol synthase gene (CcGolS1) in two clones that differed in tolerance to water deficit in order to assess the contribution of this gene to drought tolerance. The expression of CcGolS1 in leaves was differentially regulated by water deficit, depending on the intensity of stress and the genotype. In clone 109A (drought-susceptible), the abundance of CcGolS1 transcripts decreased upon exposure to drought, reaching minimum values during recovery from severe water deficit and stress. In contrast, CcGolS1 gene expression in clone 14 (drought-tolerant) was stimulated by water deficit. Changes in galactinol and RFO content did not correlate with variation in the steady-state transcript level. However, the magnitude of increase in RFO accumulation was higher in the tolerant cultivar, mainly under severe water deficit. The finding that the drought-tolerant coffee clone showed enhanced accumulation of CcGolS1 transcripts and RFOs under water deficit suggests the possibility of using this gene to improve drought tolerance in this important crop. Sociedade Brasileira de Genética 2015-05 2015-05-01 /pmc/articles/PMC4530651/ /pubmed/26273221 http://dx.doi.org/10.1590/S1415-475738220140171 Text en http://creativecommons.org/licenses/by-nc/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Plant Genetics
Santos, Tiago Benedito Dos
de Lima, Rogério Barbosa
Nagashima, Getúlio Takashi
Petkowicz, Carmen Lucia de Oliveira
Carpentieri-Pípolo, Valéria
Pereira, Luiz Filipe Protasio
Domingues, Douglas Silva
Vieira, Luiz Gonzaga Esteves
Galactinol synthase transcriptional profile in two genotypes of Coffea canephora with contrasting tolerance to drought
title Galactinol synthase transcriptional profile in two genotypes of Coffea canephora with contrasting tolerance to drought
title_full Galactinol synthase transcriptional profile in two genotypes of Coffea canephora with contrasting tolerance to drought
title_fullStr Galactinol synthase transcriptional profile in two genotypes of Coffea canephora with contrasting tolerance to drought
title_full_unstemmed Galactinol synthase transcriptional profile in two genotypes of Coffea canephora with contrasting tolerance to drought
title_short Galactinol synthase transcriptional profile in two genotypes of Coffea canephora with contrasting tolerance to drought
title_sort galactinol synthase transcriptional profile in two genotypes of coffea canephora with contrasting tolerance to drought
topic Plant Genetics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4530651/
https://www.ncbi.nlm.nih.gov/pubmed/26273221
http://dx.doi.org/10.1590/S1415-475738220140171
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