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Registros recuperados : 133 | |
81. | ![Imagem marcado/desmarcado](/consulta/web/img/desmarcado.png) | DIAS, B. B. A.; Martins, P. K.; Ribeira, A. P.; Yamaguchi-Shinozaki, K.; Nakashima, K.; NEPOMUCENO, A. L.; Caldana, C.; Martins, M. C. M.; Centeno, D. C.; SOUSA, C. A. F. de; KOBAYASHI, A. K.; MOLINARI, H. B. C. Metabolite changes in transgenic sugarcane expressing drought tolerance related gene. In: GERMPLASM AND BREEDING, 11.; MOLECULAR BIOLOGY ISSCT WORKSHOP, 8., 2015, Saint-Gilles Réunion Island. Pushing the frontiers of sugarcane improvement: abstract. [S.l]: Ercane, 2015. Biblioteca(s): Embrapa Agroenergia. |
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82. | ![Imagem marcado/desmarcado](/consulta/web/img/desmarcado.png) | MUNIZ, C. R.; FREIRE, F. das C. O.; VIANA, F. M. P.; CARDOSO, J. E.; SOUSA, C. A. F. de; GUEDES, M. I. F.; VAN DER SCHOOR, R.; JALINK, H. Monitoring cashew seedlings during interactions with the fungus Lasiodiplodia theobromae using chlorophyll fluorescence imaging. Photosynthetica, v. 52, n. 4, p. 529-537, 2014. Biblioteca(s): Embrapa Agroenergia; Embrapa Agroindústria Tropical. |
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83. | ![Imagem marcado/desmarcado](/consulta/web/img/desmarcado.png) | BITTENCOURT, C. B.; SILVA, T. L. C. da; RODRIGUES NETO, J. C.; LEAO, A. P.; RIBEIRO, J. A. de A.; MAIA, A. de H. N.; SOUSA, C. A. F. de; QUIRINO, B. F.; SOUZA JÚNIOR, M. T. Molecular interplay between non-host resistance, pathogens and basal immunity as a background for fatal yellowing in oil palm (Elaeis guineensis Jacq.) plants. International Journal of Molecular Sciences, v. 24, n. 16, article 12918, 2023. Biblioteca(s): Embrapa Agroenergia; Embrapa Meio Ambiente; Embrapa Meio-Norte. |
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86. | ![Imagem marcado/desmarcado](/consulta/web/img/desmarcado.png) | MARTINS, P. K.; DIAS, B. B. A.; RIBEIRO, A. P.; SHINOZAKI, K. Y.; NAKASHIMA, K.; NEPOMUCENO, A. L.; SOUSA, C. A. F. de; KOBAYASHI, A. K.; MOLINARI, H. B. C. Overexpression of AtDREB2A CA gene in sugarcane. In: GERMPLASM AND BREEDING, 11.; MOLECULAR BIOLOGY ISSCT WORKSHOP, 8., 2015, Saint-Gilles Réunion Island. Pushing the frontiers of sugarcane improvement: abstract. [S.l]: Ercane, 2015. Biblioteca(s): Embrapa Agroenergia. |
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87. | ![Imagem marcado/desmarcado](/consulta/web/img/desmarcado.png) | SALGADO, F. F.; VIEIRA, L. R.; SILVA, V. N. B.; LEAO, A. P.; GRYNBERG, P.; COSTA, M. M. do C.; TOGAWA, R. C.; SOUSA, C. A. F. de; SOUZA JUNIOR, M. T. Expression analysis of miRNAs and their putative target genes confirm a preponderant role of transcription factors in the early response of oil palm plants to salinity stress. BMC Plant Biology, v. 21, n. 518, 2021. Biblioteca(s): Embrapa Agroenergia; Embrapa Meio-Norte. |
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88. | ![Imagem marcado/desmarcado](/consulta/web/img/desmarcado.png) | SALGADO, F. F.; VIEIRA, L. R.; SILVA, V. N. B.; LEAO, A. P.; GRYNBERG, P.; COSTA, M. M. do C.; TOGAWA, R. C.; SOUSA, C. A. F. de; SOUZA JUNIOR, M. T. Expression analysis of miRNAs and their putative target genes confrm a preponderant role of transcription factors in the early response of oil palm plants to salinity stress. BMC Plant Biology, v. 21, 518, 2021. Biblioteca(s): Embrapa Recursos Genéticos e Biotecnologia. |
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91. | ![Imagem marcado/desmarcado](/consulta/web/img/desmarcado.png) | SOUSA, C. A. F. de; PAIVA, D S. de; CASARI, R. A. das C. N.; MOLINARI, H. B. C.; OLIVEIRA, N. G. de; KOBAYASHI, A. K.; MAGALHAES, P. C.; GOMIDE, R. L.; SOUZA JUNIOR, M. T. A procedure for maize genotypes discrimination to drought by chlorophyll fluorescence imaging rapid light curves. Plant Methods, v. 13, p. 1-17, 2017. Biblioteca(s): Embrapa Agroenergia; Embrapa Milho e Sorgo. |
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92. | ![Imagem marcado/desmarcado](/consulta/web/img/desmarcado.png) | SILVA, V. N. B.; FERREIRA, T. M. M.; PAIVA, D. S. de; CASARI, R. A. das C. N.; MOLINARI, H. B. C.; KOBAYASHI, A. K.; SOUZA JUNIOR, M. T.; SOUSA, C. A. F. de. Effect of drought on the gas exchange of maize genotypes with different levels of drought tolerance. In: BRAZILIAN CONGRESS OF PLANT PHYSIOLOGY, 16., 2017, São Pedro, SP. Abstract - [S.l.]: Sociedade Brasileira de Fisiologia Vegetal, 2017. p. 109. Biblioteca(s): Embrapa Agroenergia. |
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93. | ![Imagem marcado/desmarcado](/consulta/web/img/desmarcado.png) | FERREIRA, T. M. M.; PAIVA, D. S.; CASARI, R. A. das C. N.; SILVA, V. N. B.; MOLINARI, H. B. C.; KOBAYASHI, A. K.; SOUZA JUNIOR, M. T.; SOUSA, C. A. F. de. Effect of drought on the photochemical apparatus of maize plants as evaluated by parameters derived from chlorophyll fluorescence. In: BRAZILIAN CONGRESS OF PLANT PHYSIOLOGY, 16., 2017, São Pedro, SP. Abstract ... [S.l.]: Sociedade Brasileira de Fisiologia Vegetal, 2017. p. 109-110. Biblioteca(s): Embrapa Agroenergia. |
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94. | ![Imagem marcado/desmarcado](/consulta/web/img/desmarcado.png) | BRAGA, Í. de O.; SILVA, T. L. C. da; SILVA, V. N. B.; RODRIGUES NETO, J. C.; RIBEIRO, J. A. de A.; ABDELNUR, P. V.; SOUSA, C. A. F. de; SOUZA JUNIOR, M. T. Deep untargeted metabolomics analysis to further characterize the adaptation response of Gliricidia sepium (Jacq.) Walp. to very high salinity stress. Frontiers in Plant Science, v. 13, Art. 869105, May, 2022. Biblioteca(s): Embrapa Agroenergia; Embrapa Meio-Norte. |
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95. | ![Imagem marcado/desmarcado](/consulta/web/img/desmarcado.png) | BITTENCOURT, C. B.; SILVA, T. L. C. da; RODRIGUES NETO, J. C.; VIEIRA, L. R.; LEAO, A. P.; RIBEIRO, J. A. de A.; ABDELNUR, P. V.; SOUSA, C. A. F. de; SOUZA JUNIOR, M. T. Insights from a multi-omics integration (MOI) study in oil palm (Elaeis gineensis Jacq.) response to abiotic stresses: part one - salinity. Plants, 11, n. 1755, 2022. Biblioteca(s): Embrapa Agroenergia; Embrapa Meio-Norte. |
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96. | ![Imagem marcado/desmarcado](/consulta/web/img/desmarcado.png) | LEAO, A. P.; BITTENCOURT, C. B.; SILVA, T. L. C. da; RODRIGUES NETO, J. C.; BRAGA, I. de O.; VIEIRA, L. R.; RIBEIRO, J. A. de A.; SOUSA, C. A. F. de; ABDELNUR, P. V.; SOUZA JUNIOR, M. T. Insights from a Multi-Omics Integration (MOI) Study in Oil Palm (Elaeis gineensis Jacq.) Response to Abiotic Stresses: Part Two - Drought. Plants, 11, n. 2786, 2022. Biblioteca(s): Embrapa Agroenergia. |
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97. | ![Imagem marcado/desmarcado](/consulta/web/img/desmarcado.png) | LEAO, A. P.; BITTENCOURT, C. B.; SILVA, T. L. C. da; RODRIGUES NETO, J. C.; BRAGA, Í. de O.; VIEIRA, L. R.; RIBEIRO, J. A. de A.; ABDELNUR, P. V.; SOUSA, C. A. F. de; SOUZA JUNIOR, M. T. Insights from a Multi-Omics Integration (MOI) study in Oil Palm (Elaeis guineensis Jacq.) response to abiotic stresses: Part Two-Drought. Plants, v. 11, n. 20, 2786, Oct. 2022. Biblioteca(s): Embrapa Meio-Norte. |
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98. | ![Imagem marcado/desmarcado](/consulta/web/img/desmarcado.png) | BITTENCOURT, C. B.; SILVA, T. L. C. da; RODRIGUES NETO, J. C.; VIEIRA, L. R.; LEAO, A. P.; RIBEIRO, J. A. de A.; ABDELNUR, P. V.; SOUSA, C. A. F. de; SOUZA JUNIOR, M. T. Insights from a Multi-Omics Integration (MOI) study in oil palm (ELAEIS GUINEENSIS JACQ.) response to salinity and drought stresses. In: BRAZILIAN CONGRESS OF GENETICS, 67., 2022, Natal, RN. Porto Alegre: Sociedade Brasileira de Genética, 2022. p. 394 Biblioteca(s): Embrapa Agroenergia. |
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99. | ![Imagem marcado/desmarcado](/consulta/web/img/desmarcado.png) | BITTENCOURT, C. B.; SILVA, T. L. C. da; RODRIGUES NETO, J. C.; VIEIRA, L. R.; LEAO, A. P.; RIBEIRO, J. A. de A.; ABDELNUR, P. V.; SOUSA, C. A. F. de; SOUZA JUNIOR, M. T. Insights from a Multi-Omics Integration (MOI) study in oil palm (ELAEIS GUINEENSIS JACQ.) response to salinity and drought stresses. In: BRAZILIAN CONGRESS OF GENETICS, 67., 2022, Natal, RN. p. 394 Biblioteca(s): Embrapa Meio-Norte. |
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100. | ![Imagem marcado/desmarcado](/consulta/web/img/desmarcado.png) | SILVA, T. L. C. da; SILVA, V. N. B.; BRAGA, I. de O.; RODRIGUES NETO, J. C.; LEAO, A. P.; RIBEIRO, J. A. de A.; VALADARES, L. F.; ABDELNUR, P. V.; SOUSA, C. A. F. de; SOUZA JUNIOR, M. T. Integration of metabolomics and transcriptomics data to further characterize Gliricidia sepium (Jacq.) Kunth under high salinity stress. Plant Genome, e20182, 2021. Biblioteca(s): Embrapa Agroenergia; Embrapa Meio-Norte. |
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Registros recuperados : 133 | |
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Registro Completo
Biblioteca(s): |
Embrapa Agricultura Digital; Embrapa Agroenergia; Embrapa Meio-Norte. |
Data corrente: |
21/05/2019 |
Data da última atualização: |
18/11/2019 |
Tipo da produção científica: |
Artigo em Periódico Indexado |
Circulação/Nível: |
A - 2 |
Autoria: |
CASARI, R. A. C. N.; PAIVA, D. S.; SILVA, V. N. B.; FERREIRA, T. M. M.; SOUZA JUNIOR, M. T.; OLIVEIRA, N. G.; KOBAYASHI, A. K.; MOLINARI, H. B. C.; SANTOS, T. T.; GOMIDE, R. L.; MAGALHÃES, P. C.; SOUSA, C. A. F. de. |
Afiliação: |
Raphael Augusto das Chagas Noqueli Casari, Bolsista da Embrapa Agroenergia; Dayane S. Paiva, Bolsista da Embrapa Agroenergia; Vivianny N. B. Silva, Bolsista da Embrapa Agroenergia; Thalita M. M. Ferreira, Bolsista da Embrapa Agroenergia; MANOEL TEIXEIRA SOUZA JUNIOR, CNPAE; Nelson G. Oliveira, Bolsista da Embrapa Agroenergia; ADILSON KENJI KOBAYASHI, CNPAE; HUGO BRUNO CORREA MOLINARI, CNPAE. |
Título: |
Using thermography to confirm genotypic variation for drought response in maize. |
Ano de publicação: |
2019 |
Fonte/Imprenta: |
International Journal of Molecular Sciences v. 20, n. 9, 2273, May-1, 2019. |
DOI: |
10.3390/ijms20092273 |
Idioma: |
Inglês Português |
Conteúdo: |
The feasibility of thermography as a technique for plant screening aiming at drought-tolerance has been proven by its relationship with gas exchange, biomass, and yield. In this study, unlike most of the previous, thermography was applied for phenotyping contrasting maize genotypes whose classification for drought tolerance had already been established in the field. Our objective was to determine whether thermography-based classification would discriminate the maize genotypes in a similar way as the field selection in which just grain yield was taken into account as a criterion. We evaluated gas exchange, daily water consumption, leaf relative water content, aboveground biomass, and grain yield. Indeed, the screening of maize genotypes based on canopy temperature showed similar results to traditional methods. Nevertheless, canopy temperature only partially reflected gas exchange rates and daily water consumption in plants under drought. Part of the explanation may lie in the changes that drought had caused in plant leaves and canopy structure, altering absorption and dissipation of energy, photosynthesis, transpiration, and partitioning rates. Accordingly, although there was a negative relationship between grain yield and plant canopy temperature, it does not necessarily mean that plants whose canopies were maintained cooler under drought achieved the highest yield. |
Palavras-Chave: |
Canopy temperature; Déficit hídrico; Fenotipagem de plantas; Plant phenotyping; Termografia; Thermal image; Tolerância à seca; Water deficit. |
Thesagro: |
Milho; Zea Mays. |
Thesaurus NAL: |
Abiotic stress; Drought tolerance; Thermography. |
Categoria do assunto: |
-- X Pesquisa, Tecnologia e Engenharia |
URL: |
https://ainfo.cnptia.embrapa.br/digital/bitstream/item/198719/1/SEG-05.12.12.001.00.05-HUGO-3-ijms-20-02273-v2.pdf
https://ainfo.cnptia.embrapa.br/digital/bitstream/item/197552/1/Artigo-termografia.pdf
|
Marc: |
LEADER 02607naa a2200421 a 4500 001 2109974 005 2019-11-18 008 2019 bl uuuu u00u1 u #d 024 7 $a10.3390/ijms20092273$2DOI 100 1 $aCASARI, R. A. C. N. 245 $aUsing thermography to confirm genotypic variation for drought response in maize.$h[electronic resource] 260 $c2019 520 $aThe feasibility of thermography as a technique for plant screening aiming at drought-tolerance has been proven by its relationship with gas exchange, biomass, and yield. In this study, unlike most of the previous, thermography was applied for phenotyping contrasting maize genotypes whose classification for drought tolerance had already been established in the field. Our objective was to determine whether thermography-based classification would discriminate the maize genotypes in a similar way as the field selection in which just grain yield was taken into account as a criterion. We evaluated gas exchange, daily water consumption, leaf relative water content, aboveground biomass, and grain yield. Indeed, the screening of maize genotypes based on canopy temperature showed similar results to traditional methods. Nevertheless, canopy temperature only partially reflected gas exchange rates and daily water consumption in plants under drought. Part of the explanation may lie in the changes that drought had caused in plant leaves and canopy structure, altering absorption and dissipation of energy, photosynthesis, transpiration, and partitioning rates. Accordingly, although there was a negative relationship between grain yield and plant canopy temperature, it does not necessarily mean that plants whose canopies were maintained cooler under drought achieved the highest yield. 650 $aAbiotic stress 650 $aDrought tolerance 650 $aThermography 650 $aMilho 650 $aZea Mays 653 $aCanopy temperature 653 $aDéficit hídrico 653 $aFenotipagem de plantas 653 $aPlant phenotyping 653 $aTermografia 653 $aThermal image 653 $aTolerância à seca 653 $aWater deficit 700 1 $aPAIVA, D. S. 700 1 $aSILVA, V. N. B. 700 1 $aFERREIRA, T. M. M. 700 1 $aSOUZA JUNIOR, M. T. 700 1 $aOLIVEIRA, N. G. 700 1 $aKOBAYASHI, A. K. 700 1 $aMOLINARI, H. B. C. 700 1 $aSANTOS, T. T. 700 1 $aGOMIDE, R. L. 700 1 $aMAGALHÃES, P. C. 700 1 $aSOUSA, C. A. F. de 773 $tInternational Journal of Molecular Sciences$gv. 20, n. 9, 2273, May-1, 2019.
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Embrapa Agroenergia (CNPAE) |
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