Mineral nutrition in orchids

  • Rodrigo Thibes Hoshino Universidade Estadual de Londrina
  • Helio de Souza Junior Universidade Federal de Viçosa https://orcid.org/0000-0001-9683-0655
  • Débora Perdigão Tejo Universidade Estadual de Londrina
  • Sergio Pedro Junior Universidade Estadual de Londrina https://orcid.org/0000-0003-1355-3168
  • Alexandra Scherer Universidade Norte do Paraná
  • Ricardo Tadeu de Faria Universidade Estadual de Londrina
Keywords: Flower of vase, ornamental plant, fertility, macronutrients, organic fertilizer, perennial plants

Abstract

The Orchidaceae family stands out when it comes to the commercialization of pot flowers, this is due to their flowers being widely attractive and have variability of colors, size and shapes according to the species; this results in plants with high relevance to the economy in the floriculture sector. The goal of this study was to elucidate questions about the effect of micronutrients on initial growth, the influence of electrical conductivity and frequency of fertilizer application, and the efficiency of organic fertilization with castor bean cake, on the growth and nutrition of Brassia verrucosa Lindley orchid.  Studies with mineral fertilization involving nitrogen (N), phosphorus (P) and potassium (K) in Cattleya and Phalaenopsis seedlings allowed to obserevar that the N increment increased the number of flowers in Cattleya, while P and K did not affect this variable. The salinity of irrigation water also has an effect on growth and flowering.  The electrical conductivity, the sources of fertilizers, their interaction with the substrate, the balance between the nutrients, the quantities and frequencies to be used, in addition to the different phenological requirements and characteristics intrinsic to the species, are important aspects to be considered in fertirigation.

Downloads

Download data is not yet available.

Author Biographies

Rodrigo Thibes Hoshino, Universidade Estadual de Londrina

Departamento de Agronomia

Helio de Souza Junior, Universidade Federal de Viçosa

Departamento  de  Agronomia

Débora Perdigão Tejo, Universidade Estadual de Londrina

Departamento de Agronomia

Sergio Pedro Junior, Universidade Estadual de Londrina

Departamento de Agronomia

Alexandra Scherer, Universidade Norte do Paraná

Departamento de Agronomia

Ricardo Tadeu de Faria, Universidade Estadual de Londrina

Departamento de Agronomia

References

An, H. R., Kim, Y. J., & Kim, K. S. (2012). Flower Initiation and Development in Cymbidium by Night Interruption with Potassium and Nitrogen. Horticulture, Environment, and Biotechnology, 53(3), 204–211. https://doi.org/10.1007/s13580-012-0023-5

Barros, F., Vinhos, F., Rodrigues, V. T., Barberena, F. F. V. A., Fraga, C. N. (2010). Orchidaceae. in R. C. Forzza, et al (Org.). Catálogo de plantas e Fungos do Brasil. Rio de Janeiro, RJ: Jardim Botânico do Rio de Janeiro. v.2, p.1344- 1426.

Bernardi, A. C., Faria, R. T., Fiuza, J., Portela, R., Unemoto, L. K., & Assis, A. M. (2004). fertirrigadas com diferentes concentrações da solução nutritiva de sarruge vegetative development of Dendrobium nobile Lindl . plants fertirrigated with diferents concentrations of sarruge nutritive solution. Semina: Agrarian Sciences, 25(1), 13–20.

Bertoncelli, D. J., Alves, G. A. C., Freiria, G. H., Furlan, F. F., Ibanhes Neto, H. F., & Faria, R. T. (2018). Iron concentrations in the in vitro cultivation of native Brazilian orchid Schomburgkia crispa. Agronomy Science and Biotechnology, 4(2), 93-100. https://doi.org/10.33158/asb.2018v4i2p93

Bichsel, R. G., Starman, T. W., & Wang, Y. (2008). Nitrogen , Phosphorus , and Potassium Requirements for Optimizing Growth and Flowering of the Nobile Dendrobium as a Potted Orchid. HortScience, 43(2), 328–332.

Giard, F., Lucotte, M., Moingt, M., & Gaspar, A. (2022). Glyphosate and aminomethyphosphonic (AMPA) contents in Brazilian field crops soils. Agronomy Science and Biotechnology, 8, 1–18. https://doi.org/10.33158/asb.r155.v8.2022

Govaërts, R. (2006). World checklist of selected plant families. Orchidaceae. Kew: Board of Trustees of the Royal Botanic Gardens. https://powo.science.kew.org/

Higaki, T., & Imamura, J. S. (1987). NPK requirements of vanda miss Joaquim orchid plants. Resarch Extension Series, 87, 1-5.

IBRAFLOR - Brazilian Institute of Floriculture. (2013a). General industry data. Press Release. Campinas, SP: IBRAFLOR. http://www.ibraflor.com.br

IBRAFLOR - Brazilian Institute of Floriculture. (2013b). Internal Market Industry numbers. Campinas, SP:IBRAFLOR. http://www.ibraflor.com.br

Junqueira, A. H., & Peetz, M. S. (2017). Brazilian consumption of flowers and ornamental plants: habits, practices and trends. Ornamental Horticulture, 1, 178–184. https://doi.org/http://dx.doi.org/10.14295/oh.v23i2.1070

Kiss, J. (2013). Sales of flowers and plants can go from R$ 5 billion. Valor Econômico Newspaper. http://www.hortica.com.br

Khee, C., Ng, Y., & Sin, C. (2000). Orchid pseudobulbs ± ` false ’ bulbs with a genuine importance in orchid growth and survival ! Scientia Horticulturae, 83(3), 165–172.

Leão, P., Neves, L., Colombo, R., Shahab, M., Oliveira, J., Luz, F., & Roberto, S. (2019). Temperature and storage periods on the maintenance of chemical composition of medicinal plants. Agronomy Science and Biotechnology, 5(1), 40-51. https://doi.org/10.33158/asb.2019v5i1p40

Malavolta, E. (2006). Manual de nutrição mineral de plantas. São Paulo, SP: Agronômica Ceres.

Marschner, H. (2005). Mineral nutrition of higher plants. (2nd ed.). London: Academic.

Miller, D., & Warren, R. (1996). Orchids from the top of the mountain range: from the atlantic rain forest of southeastern Brazil. Rio de Janeiro, Brazil: Salamandra Consultoria Editorial.

Naik, S. K., Barman, D., & Medhi, R. P. (2013). Evaluation of electrical conductivity of the fertiliser solution on growth and flowering of a Cymbidium hybrid. South African Journal of Plant and Soil, 30(1), 33–39. https://doi.org/10.1080/02571862.2013.771753

Poole, H. A., & Seeley, J. G. (1978). Nitrogen , Potassium and Magnesium Nutrition of Three Orchid Genera. American Society for Horticultural Science, 103(4), 485–488.

Rodrigues, D. T., Novais, R. F., Alvarez, V. H., Dias, J. M. M., & Villani, E. M. A. (2010a). Orchid growth and nutrition in response to mineral and organic fertilizers. Revista Brasileira de Ciências Do Solo, 34(5), 1609–1616.

Rodrigues, D. T., Novais, R. F., Alvarez, V. H., Dias, J. M. M., & Villani, E. M. A. (2010b). Response of Epidendrum Ibaguense (Orchidaceae) to the application of lime rates to the pot. Revista Brasileira de Ciência Do Solo, 34(1), 793–800.

Rosado, R. D. S., Oliveira, A. M. C., Santos, I. G., Carneiro, P. C. S., Cruz, C. D., & Cecon, P. R. (2021). Parental selection based on molecular information under a population genetics approach. Agronomy Science and Biotechnology, 7, 1–9. https://doi.org/10.33158/asb.r131.v7.2021

Sheehan, T. J., Fisher, A., & Clara, X. P. (1960). Effects of nutrition and potting media on growth and flowering of certain epiphytic orchids. Horticultural Science, 30, 352–354.

Silvera, K., Santiago, L. S., Cushman, J. C., Winter, K., & Lu, C. A. M. (2009). Crassulacean Acid Metabolism and Epiphytism Linked to Adaptive Radiations in the Orchidaceae 1 [ OA ]. Plant Physiology, 149, 1838–1847. https://doi.org/10.1104/pp.108.132555

Susilo, H., Peng, Y., Lee, S., Chen, Y., & Chang, Y. A. (2013). The Uptake and Partitioning of Nitrogen in Phalaenopsis Sogo Yukidian ‘ V3 ’ as Shown by 15 N as a Tracer. Journal of the American Society for Horticultural Science, 138(3), 229–237.

Takane, R., Silva, F. C., Pereira, S. J., Takemura, M. C., Angélica, T., & Faria, T. R. (2020). Doses of bokashi in the growth of two basil cultivars. Agronomy Science and Biotechnology, 6, 1–9. https://doi.org/10.33158/asb.r113.v6.2020

Timm, C. R. F., Schuch, M. W., Pinto Tomaz, Z. F., Casarin, J. V., Ramm, A., & Raasch, C. G. (2021). Rooting dynamics of Prunus minicuttings. Agronomy Science and Biotechnology, 6, 1–7. https://doi.org/10.33158/asb.r115.v6.2020

Trépanier, M., Lamy, M., & Dansereau, B. (2009). Phalaenopsis can absorb urea directly through their roots. Plant and Soil, 319, 95–100. https://doi.org/10.1007/s11104-008-9852-5

Wang, Y. (1994). Medium and fertilizer affect the performance of Phalaenopsis orchids during two flowering cycles. Scientia Horticulturae, 29, 269–271.

Wang, Y. (1996). Effects of six fertilizers on vegetative growth and flowering of phalaenopsis orchids. Scientia Horticulturae, 65(96), 191–197.

Wang, Y. T. (1998). Impact of salinity and media on growth and flowering of a hybrid Phalaenopsis orchid. Scientia Horticulturae, 33(2), 247-250.

Wang, Y. (2000). Impact of a High Phosphorus Fertilizer and Timing of Termination of Fertilization on Flowering of a Hybrid Moth Orchid. Scientia Horticulturae, 35(1), 60–62.

Wang, Y. (2007). Potassium Nutrition Affects Phalaenopsis Growth and Flowering. Scientia Horticulturae, 42(7), 1563–1567.

Wang, Y., & Konow, E. A. (2002). Fertilizer Source and Medium Composition Affect Vegetative Growth and Mineral Nutrition of a Hybrid Moth Orchid. Scientia Horticulturae, 127(3), 442–447.

Watanabe, D. (2002). Orchids: Manual of Cultivation. São Paulo, SP, Brazil: Orquidophile Association of São Paulo.

Yen, C. Y. T., & Starman, T. W. et al. (2008). Timing of Nutrient Termination and Reapplication for Growth , Flower Initiation , and Flowering of the Nobile Dendrobium Orchid [2008]. Journal of the American Society for Horticultural Science, 133(4), 501–507.

Zong-Min, M., Ning, Y., Shu-Yun, L., & Hong, H. (2012). Nitrogen requirements for vegetative growth, flowering, seed production, and ramet growth of paphiopedilum armeniacum (Orchid). HortScience, 47(5), 585–588. https://doi.org/10.21273/hortsci.47.5.585

Published
2023-02-07
How to Cite
Hoshino, R. T., Souza Junior, H., Tejo, D. P., Pedro Junior, S., Scherer, A., & Faria, R. T. (2023). Mineral nutrition in orchids . Agronomy Science and Biotechnology, 9, 1-11. https://doi.org/10.33158/ASB.r178.v9.2023

Most read articles by the same author(s)