Morphology and enzymatic activity of seedlings from wheat desiccated in pre-harvest

Palavras-chave: glufosinate-ammonium; glyphosate, paraquat; Triticum aestivum (L).

Resumo

Desiccation practiced during the preharvest period contributes to mechanized seed harvesting. This work aimed to verify whether wheat preharvest desiccation influences the morphological and physiological characteristics of the seedlings produced from the seeds of desiccated plants. The preharvest treatments included a combination of herbicides (glufosinate-ammonium, glyphosate, and paraquat) and phenological application stages (Zadoks: 83, 85, 87, and 92), as well as a control treatment (without application). Two wheat cultivars were used (BRS Parrudo and TBIO Sinuelo). Herbicide applications were observed to decrease the length and projected area of the shoots by 52 and 46%, respectively, as well as reduce the length, surface area and root volume when compared to the control treatment without application. The hydrogen peroxide concentration, as well as the enzymatic activity of guaiacol peroxidase, was observed to rise only in the treatments where the herbicides were applied. Physiologically, an increased hydrogen peroxide output was revealed, while the guaiacol peroxidase enzymatic activity increased in both cultivars, but with no effect noted in the superoxide dismutase enzymatic activity. The shoot and root morphology were negatively influenced, showing a rise in the enzymatic activity and hydrogen peroxide concentration in the seedlings from the desiccated plants.

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Biografia do Autor

Glauber Monçon Fipke, Universidade Federal do Pampa

Departamento de Fitotecnia

Referências

Barbosa, M. R., Silva, M. M. de A., Willadino, L., Ulisses, C., & Camara, T. R. (2014). Geração e desintoxicação enzimática de espécies reativas de oxigênio em plantas. Ciência Rural, 44(3), 453-460. DOI: 10.1590/S0103-84782014000300011

Batista, R. O., Furtini Neto, A. E., Deccetti, S. F. C., & Viana, C. S. (2016). Root morphology and nutrient uptake kinetics by australian cedar clones. Revista Caatinga, 29(1), 153-162. DOI: 10.1590/1983-21252016v29n118rc

Beauchamp, C., & Fridovich, I. (1971). Superoxide dismutase: Improved assays and an assay applicable to acrylamide gels. Analytical Biochemistry, 44(1), 276-287. DOI: 10.1016/0003-2697(71)90370-8

Bellé, C., Kulczynski, S. M., Basso, C. J., Edu Kaspary, T., Lamego, F. P., & Pinto, M. A. B. (2014). Yield and quality of wheat seeds as a function of desiccation stages and herbicides. Journal of Seed Science, 36(1), 63-70. DOI: 10.1590/S2317-15372014000100008

Bhattacharjee, S. (2010). Sites of generation and physicochemical basis of formation of reactive oxygen species in plant cell. In S. D. Gupta (Ed.), Reactive oxygen species and antioxidants in higher plantas (p. 1-30). Enfield, NH: Science Publishers.

Brasil. (2009). Regras para análise de sementes. Brasília, DF: MAPA/ACS. Retrieved on Sep. 29, 2018 from http://www.agricultura.gov.br/assuntos/insumos-agropecuarios/arquivos-publicacoes-insumos/2946_regras_analise__sementes.pdf

Bredemeier, C., Mundstock, C. M., & Büttenbender, D. (2001). Efeito do tamanho das sementes de trigo no desenvolvimento inicial das plantas e no rendimento de grãos. Pesquisa Agropecuária Brasileira, 36(8), 1061-1068. Retrieved on Sep. 29, 2018 from http://seer.sct.embrapa.br/index.php/pab/article/view /6230/3295

Bresnahan, G. A., Manthey, F. A., Howatt, K. A., & Chakraborty, M. (2003). Glyphosate applied preharvest induces shikimic acid accumulation in hard red spring wheat (Triticum aestivum). Journal of Agricultural and Food Chemistry, 51(14), 4004-4007. DOI: 10.1021/jf0301753

Chapagain, T., Super, L., & Riseman, A. (2014). Root architecture variation in wheat and barley cultivars. American Journal of Experimental Agriculture, 4(7), 849-856. DOI: 10.9734/ajea/2014/9462

Cruz, C. D. (2013). GENES - a software package for analysis in experimental statistics and quantitative genetics. Acta Scientiarum. Agronomy, 35(3), 271-276. DOI: 10.4025/actasciagron.v35i3.21251

Del-Buono, D., Ioli, G., Nasini, L., & Proietti, P. (2011). A comparative study on the interference of two herbicides in wheat and italian ryegrass and on their antioxidant activities and detoxification rates. Journal of Agricultural and Food Chemistry, 59(22), 12109-12115. DOI: 10.1021/jf2026555

Delgado, C. M. L., Coelho, C. M. M. d., & Buba, G. P. (2015). Mobilization of reserves and vigor of soybean seeds under desiccation with glufosinate ammonium. Journal of Seed Science, 37(2), 154-161. DOI: 10.1590/2317-1545v37n2148445

Empresa Brasileira de Pesquisa Agropecuária [EMBRAPA]. (2017). Informações técnicas para trigo e triticale. Retrieved on Sep. 29, 2018 from http://ainfo.cnptia.embrapa.br/digital/bitstream/item/155787/1/ Informacoes-Tecnicas-para-Trigo-e-Triticale-Safra-2017-OL.pdf

Fipke, G. M., Martin, T. N., Nunes, U. R., Deak, E. A., Stecca, J. D. L., Winck, J. E. M., … Rossato, A. C. (2018). Application of non-selective herbicides in the pre-harvest of wheat damages seed quality. American Journal of Plant Sciences, 9(1), 107-123. DOI: 10.4236/ajps.2018.91010

Giannopolitis, C. N., & Ries, S. K. (1977). Superoxide dismutases: Occurrence in higher plants. Plant Physiology, 59(2), 309-314. DOI: 10.1104/pp.59.2.309

Gill, S. S., & Tuteja, N. (2010). Reactive oxygen species and antioxidant machinery in abiotic stress tolerance in crop plants. Plant Physiology and Biochemistry, 48(12), 909-930. DOI: 10.1016/j.plaphy.2010.08.016

Jaskulski, D., & Jaskulska, I. (2014). The effect of pre-harvest glyphosate application on grain quality and volunteer winter wheat. Romanian Agricultural Research, 31(1), 283-289.

Krenchinski, F. H., Cesco, V. J. S., Rodrigues, D. M., Pereira, V. G. C., Albrecht, A. J. P., & Albrecht, L. P. (2017). Yield and physiological quality of wheat seeds after desiccation with different herbicides. Journal of Seed Science, 39(3), 25-261. DOI: 10.1590/2317-1545v39n3172506

Loreto, F., & Velikova, V. (2001). Isoprene produced by leaves protects the photosynthetic apparatus against ozone damage, quenches ozone products, and reduces lipid peroxidation of cellular membranes. Plant Physiology, 127(4), 1781-1787. DOI: 10.1104/pp.010497

Mittler, R. (2002). Oxidative stress, antioxidants and stress tolerance. Trends in Plant Science, 7(9), 405-410. DOI: 10.1016/S1360-1385(02)02312-9

Oliveira Jr., R. S. (2011). Mecanismos de ação de herbicidas. In R. S. Oliveira Jr., J. Constantin, & M. H. Inoue (Eds.). Biologia e manejo de plantas daninhas (p.141-192). Curitiba, PR: Omnipax.

Soltani, A., Gholipoor, M., & Zeinali, E. (2006). Seed reserve utilization and seedling growth of wheat as affected by drought and salinity. Environmental and Experimental Botany, 55(1–2), 195-200. DOI: 10.1016/j.envexpbot.2004.10.012

Zadoks, J. C., Chang, T. T., & Konzak, C. F. (1974). A decimal code for the growth stages of cereals. Weed Research, 14(6), 415-421. DOI: 10.1111/j.1365-3180.1974.tb01084.x

Zeraik, A. E., Souza, F. S. De, Fatibello-Filho, O., & Leite, O. D. (2008). Desenvolvimento de um spot test para o monitoramento da atividade da peroxidase em um procedimento de purificação. Quimica Nova, 31(4), 731-734. DOI: 10.1590/S0100-40422008000400003

Publicado
2020-08-14
Como Citar
Fipke, G. M., Deak, E. A., Stecca, J. D. L., Bernardy, D., Berger, M., Tabaldi, L. A., & Martin, T. N. (2020). Morphology and enzymatic activity of seedlings from wheat desiccated in pre-harvest. Acta Scientiarum. Agronomy, 43(1), e44974. https://doi.org/10.4025/actasciagron.v43i1.44974
Seção
Produção Vegetal

 

2.0
2019CiteScore
 
 
60th percentile
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2.0
2019CiteScore
 
 
60th percentile
Powered by  Scopus