Bell pepper production under saline stress and fertigation with different K+/Ca2+ ratios in a protected environment
Abstract
Bell peppers are sensitive to salinity; therefore, it is necessary to find alternatives to reduce saline stress. An experiment was conducted in a greenhouse at Federal Rural University of the Semi-Arid Region, in Mossoró, Rio Grande do Norte State, Brazil, to evaluate the effects of salinity and K+/Ca2+ ratios on bell pepper production. The experimental design consisted of randomized blocks in a 5 x 4 factorial scheme with four replicates, corresponding to five K+/Ca2+ ratios (F1 = 3.3/1, F2 = 2.8/1, F3 = 2.2/1, F4 = 1.8/1, and F5 = 1.5/1) and four salinity levels in the nutrient solution using NaCl (1.75, 3.25, 4.75, and 6.25 dS m-1). The following parameters were evaluated: the number of fruits (total, marketable and unmarketable), the mean weight of fruits (marketable and unmarketable), fruit production (total, marketable and percentage of marketable fruits) and a salinity tolerance index. Generally, nutrient solution enrichment with K+ or Ca2+ did not cause significant increments in bell pepper yield. The fertigation treatments F2, F3, and F5 led to a higher bell pepper tolerance to salinity, allowing waters with higher salt concentrations to be used without causing a reduction in the yield.
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References
Ahmed, B. A. E., & Moritani, I. S. (2010). Effect of saline water irrigation and manure application on the available water. Agricultural Water Management, 97(1), 165-170. DOI: 10.1016/j.agwat.2009.09.001
Aktas, H., Abak, K., & Cakmak, I. (2006). Genotypic variation in the response of pepper to salinity. Scientia Horticulturae, 110(3), 260-266. DOI: 10.1016/j.scienta.2006.07.017
Albuquerque, F. S., Silva, E. F. F., Bezerra Neto, E., Souza, & Santos, A. N. (2012). Nutrientes minerais em pimentão fertirrigado sob lâminas de irrigação e doses de potássio. Horticultura Brasileira, 30(4), 681-687. DOI: 10.1590/S0102-05362012000400019
Amirinejad, A. A., Sayyari, M., Ghanbari, F., & Kordi, S. (2017). Salicylic acid improves salinity-alkalinity tolerance in pepper (Capsicum annuum L.). Advances in Horticultural Science, 31(3), 157-163. DOI: 10.13128/ahs-21954
Arruda, C. E. M., Dias, N. S, Blanco, F. F., Sousa Neto, O. N., & Ferreira Neto, M. (2011). Bell pepper cultivation with brine from brackish water desalination. Revista Caatinga, 24(2), 197-201.
Ashraf, M. (2004). Some important physiological selection criteria for salt tolerance in plants. Flora, 199(5), 361-376. DOI: 10.1078/0367-2530-00165
Ayers, R. S., & Westcot, D. W. (1999). A qualidade de água na agricultura (2a ed., Estudos Irrigação e Drenagem, 29 revisado). Campina Grande, PB: UFPB; FAO.
Azuma, R., Ito, N., Nakayama, N., Suwa, R., Nguyen, N. T., Larrinaga-Mayoral, J. A., Esaka, M., Fujiyama, H., & Saneoka, H. (2010). Fruits are more sensitive to salinity than leaves and stems in pepper plants (Capsicum annuum L.). Scientia Horticulturae, 125(3),171-178. DOI: 10.1016/j.scienta.2010.04.006
Carmo Filho, F., & Oliveira, O. F. (1995). Mossoró: um município do semi-árido nordestino, caracterização climática e aspecto florístico (Coleção Mossoroense, série B). Mossoró, RN: ESAM.
Castellane, P. D., & Araújo, J. A. C. (1995). Cultivo sem solo: hidroponia. Jaboticabal, SP: FUNEP.
Charlo, H. C. O., Oliveira, S. F., Vargas, P. F., Castoldi, R., Barbosa, J. C., & Braz, L. T. (2012). Accumulation of nutrients in sweet peppers cultivated in coconut fiber. Horticultura Brasileira, 30(1), 125-131. DOI: 10.1590/S0102-05362012000100021
Ferreira, D. F. (2011). Sisvar: um sistema computacional de análises estatística. Ciência e Agrotecnologia, 35(6), 1039-1042. DOI: 10.1590/S1413-70542011000600001
Furtado, G. F., Cavalcante, A. R., Chaves, L. H. G., Santos Júnior, J. A., & Gheyi, H. R. (2017). Growth and production of hydroponic pepper under salt stress and plant density. American Journal of Plant Sciences, 8(9), 2255-2267. DOI: 10.4236/ajps.2017.89151
Ghanem, M. E., Van Elteren, J., Albacete, A., Quinet, M., Martínez-Andújar, C., Kinet, J, M., Pérez-Alfocea, F., & Lutts, S. (2009). Impact of salinity on early reproductive physiology of tomato (Solanum lycopersicum) in relation to a heterogeneous distribution of toxic ions in flower organs. Functional Plant Biology, 36(2), 125-136. DOI: 10.1071/FP08256
Giuffrida, F., Graziani, G., Fogliano, V., Scuderi, D., Romano, D., & Leonardi, C. (2014). Effects of nutrient and NaCl salinity on growth, yield, quality and composition of pepper grown in soilless closed system. Journal of Plant Nutrition, 37(9), 1455-1474. DOI: 10.1080/01904167.2014.881874
Kaya, C., & Higgs, D. (2003). Supplementary potassium nitrate improves salt tolerance in bell pepper plants. Journal of Plant Nutrition, 26(7), 1367-1382. DOI: 10.1081/PLN-120021048
Leonardo, M., Broetto, F.; Villas Bôas, R. L., Almeida, R. S., & Marchese, J. A. (2007). Produção de frutos de pimentão em diferentes concentrações salinas. Irriga, 12(1), 73-77. DOI: 10.15809/irriga.2007v12n1p73-82
Lima, G. S., Santos, J. B., Soares, L. A. A., Gheyi, H. R., Nobre, R. G., & Pereira, R. F. (2016). Irrigação com águas salinas e aplicação de prolina foliar em cultivo de pimentão ‘All Big’. Scientia Comunicata, 7(4), 513-522. DOI: 10.14295/CS.v7i4.1671
Lima, N. S., Morais, M. B., Silva, E. F. F., Camara, T. R., & Willadino, L. (2017). Production and antioxidative metabolism in bell pepper grown with saline water in hydroponic system. Revista Brasileira de Engenharia Agrícola e Ambiental, 21(10), 675-680. DOI: 10.1590/1807-1929/agriambi.v21n10p675-680
Manaa, A., Gharbi, E., Mimouni, H., Wasti, S., Aschi-Smiti,S., Lutts, S., & Ben Ahmed, H. (2014). Simultaneous application of salicylic acid and calcium improves salt tolerance in two contrasting tomato (Solanum lycopersicum) cultivars. South African Journal of Botany, 95(1), 32-39. DOI: 10.1016/j.sajb.2014.07.015
Munns, R., & Tester, M. (2008). Mechanisms of salinity tolerance. Annual Review of Plant Biology, 59, 651-681. DOI: 10.1146/annurev.arplant.59.032607.092911
Navarro, J. M., Garrido, C., Flores, P., & Martínez, V. (2010). The effect of salinity on yield and fruit quality of pepper grown in perlite. Spanish Journal of Agricultural Research, 8(1), 142-150.
Nunes, R. L. C.; Dias, N. S.; Moura, K. K. C. F.; Souza Neto, O. N.; & Costa, J. M. (2013). Efeitos da salinidade da solução nutritiva na produção de pimentão cultivado em substrato de fibra de coco. Revista Caatinga, 26(4), 48-53.
Oliveira, F. A., Duarte, S. N., Medeiros, J. F., Dias, N. S., Oliveira, M. K. T., Silva, R. C. P., & Lima, K. S. (2015). Nutrição mineral do pimentão submetido a diferentes manejos de fertirrigação. Horticultura Brasileira, 33(2), 216-223. DOI 10.1590/S0102-053620150000200013
Oliveira, F. A., Medeiros, J. F., Cunha, R. C., Souza, M, W. L., & Lima, L. A. (2016). Uso de bioestimulante como agente amenizador do estresse salino na cultura do milho pipoca. Revista Ciência Agronômica, 47(2), 307-315. DOI: 10.5935/1806-6690.20160036
Rameshwaran, P., Tepe, A., Yazar, A., & Ragab, R. (2015). The effect of saline irrigation water on the yield of pepper: Experimental and modelling study. Irrigation and Drainage, 64(1), 41-49. DOI: 10.1002/ird.1867
Rubio, J. S., García-Sánchez, F. Rubio, F., García, A. L., & Martínez, M. (2010b). The importance of K+ in ameliorating the negative effects of salt stress on the growth of pepper plants. European Journal of Horticultural Science, 75(1), 33-41.
Rubio, J. S., García-Sánchez, F., Flores, P., Navarro, J. M., & Martínez, V. (2010a). Yield and fruit quality of sweet pepper in response to fertilisation with Ca2+ and K+. Spanish Journal of Agricultural Research, 8(1), 170-177. DOI: 10.5424/sjar/2010081-1156
Rubio, J. S., García-Sanchez, F., Rubio, F., & Martínez, V. (2009). Yield, blossom end rot incidence, and fruit quality in pepper plants under moderate salinity are affected by K+ and Ca2+ fertilization. Scientia Horticulturae, 119(2), 79-97. DOI: 10.1016/j.scienta.2008.07.009
Rubio, J. S., Pereira, W. E., Garcia-Sanchez, F., Murillo, L., Garcia, A. L., & Martinez, V. (2011). Sweet pepper production in substrate in response to salinity, nutrient solution management and training system. Horticultura Brasileira, 29(3), 275-281. DOI: 10.1590/S0102-05362011000300003
Santos, A. N., Silva, E. F. F., Silva, G. F., Barnabé, J. M. C., Rolim, M. M., & Dantas, D. C. (2016). Yield of cherry tomatoes as a function of water salinity and irrigation frequency. Revista Brasileira de Engenharia Agrícola e Ambiental, 20(2), 107-112. DOI: 10.1590/1807-1929/agriambi.v20n2p107-112
Shabani, E., Tabatabaei, S. J., Bolandnazar, S., & Ghasemi, K. (2012). Vegetative growth and nutrient uptake of salinity stressed cherry tomato in different calcium and potassium level. International Research Journal of Applied and Basic Sciences, 3(9), 1845-1853.
Taylor, M. D., & Locascio, S. J. (2007). Blossom-end rot: a calcium deficiency. Journal of Plant Nutrition, 27(1), 123-139. DOI: 10.1081/PLN-120027551
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