Nitrogen supply influences agronomic performance, essential oil yield, and phytochemical composition of basil (Ocimum basilicum L.) grown under hydroponic conditions
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Keywords

Nutrient solution
Greenhouse
Secondary metabolites
Biomass.

How to Cite

Pimentel, D. S. C., Kehl, L. G. H., Fonseca, M. C. M., Martinez, H. E. P., Gonçalves, B. F. de S., Santos, E. F. dos, … Sartoratto, A. (2026). Nitrogen supply influences agronomic performance, essential oil yield, and phytochemical composition of basil (Ocimum basilicum L.) grown under hydroponic conditions. Semina: Ciências Agrárias, 47(2), 503–518. https://doi.org/10.5433/1679-0359.2026v47n2p503

Abstract

Basil (Ocimum basilicum L.) is an aromatic and medicinal plant widely cultivated for its culinary, seasoning, and therapeutic applications, making it an economically important crop. Among its high-504 value products, basil essential oil (EO) is widely used to enhance the aroma and flavor of processed foods and beverages and for its pharmacological properties. Nitrogen (N) is one of the primary nutrients regulating plant growth, biomass accumulation, and secondary metabolism, thereby influencing EO yield and chemical composition. This study evaluated the effects of different N concentrations in the nutrient solution on the agronomic performance, EO yield, and phytochemical composition of hydroponically grown basil. Basil seedlings (~12 cm tall) were cultivated in a greenhouse using a completely randomized design with five N concentrations (4.0, 6.0, 8.0, 10.0, and 12.0 mmol L–¹) and three replicates. Plants received Hoagland and Arnon (1950) nutrient solution, and the pH was maintained between 5.8 and 6.2. Increasing N supply enhanced leaf and root biomass, root volume, and tissue N concentration. The highest N concentration (12 mmol L–¹) produced the greatest EO yield and increased the relative abundance of 1,8-cineole and eugenol, whereas the lowest N concentration (4 mmol L–¹) promoted greater germacrene D accumulation.

https://doi.org/10.5433/1679-0359.2026v47n2p503
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References

Allaire, J. J. (2012). RStudio: Integrated development environment for R. RStudio.

Azizah, N. S., Irawan, B., Kusmoro, J., Safriansyah, W., Farabi, K., Oktavia, D., Doni, F. & Miranti, M. (2023). Sweet basil (Ocimum basilicum L.): a review of its botany, phytochemistry, pharmacological activities, and biotechnological development. Plants, 12(24), 4148. doi: 10.3390/plants12244148

Basso, S. M. S. (1999). Caracterização morfológica e fixação biológica de nitrogênio de espécies de Adesmia DC e Lotus L. Tese de doutorado, Universidade Federal do Rio Grande do Sul, Porto Alegre, RS, Brasil.

Carmo, C. O. do; Silva, F. da; Silva, R. M. da; Soares, A. C. F. Utilização de compostos orgânicos inoculados com Actinobactéria na adubação de manjericão (Ocimum basillicum L.). MAGISTRA, Cruz das Almas, v. 30, p. 18-27, 2019. Disponível em: https://periodicos.ufrb.edu.br/index.php/magistra/article/view/4027. Acesso em: 4 set. 2026.

Daneshian, A., Gurbuz, B., Cosge, B., & Ipek, A. (2009). Chemical components of essential oils from basil (Ocimum basilicum L.) grown at different nitrogen levels. International Journal of Natural and Engineering Sciences, 3(3), 9-13. doi: 10.22092/jmpb.2013.108589

Hoagland, D. R., & Arnon, D. I. (1950). The water culture method for growing plants without soil. California Agricultural Experiment Station. (Circular).

Khan, A., Kumar, D., Suryavanshi, P., Padalia, R. C., Venkatesha, K. T., Kholiya, S., Verma, P. P. S., & Singh, S. (2024). Spacing and nitrogen application affect Indian oregano (Origanum vulgare L.) biomass, essential oil yield and composition. Industrial Crops and Products, 218, 119010. doi: https://doi.org/10.1016/j.indcrop.2024.119010

Khater, E. S., Bahnasawy, A., Abass, W., Morsy, O., El-Ghobashy, H., Shaban, Y., & Egela, M. (2021). Production of basil (Ocimum basilicum L.) under different soilless cultures. Scientific Reports, 11, 12754. doi: https://doi.org/10.1038/s41598-021-91986-7

Kiferle, C., Maggini, R., & Pardossi, A. (2013). Influence of nitrogen nutrition on growth and accumulation of rosmarinic acid in sweet basil (Ocimum basilicum L.) grown in hydroponic culture. Australian Journal of Crop Science, 7(3), 321-327.

Kjeldahl, J. (1883). Neue Methode zur Bestimmung des Stickstoffs in organischen Körpern. Zeitschrift für Analytische Chemie, 22, 366–382. doi: https://doi.org/10.1007/BF01338151

Klimánková, E., Holadová, K., Hajšlová, J., Čajka, T., Poustka, J., & Koudela, M. (2008). Aroma profiles of five basil (Ocimum basilicum L.) cultivars grown under conventional and organic conditions. Food Chemistry, 107(1), 464-472. doi: 10.1016/j.foodchem.2007.07.062

Mahmoud, S. S., & Croteau, R. B. (2002). Strategies for transgenic manipulation of monoterpene biosynthesis in plants. Trends in Plant Science, 7(8), 366-373. doi: 10.1016/S1360-1385(02)02303-8

Marschner, H. (2012). Marschner’s mineral nutrition of higher plants (3th ed.). Academic Press.

Martinez, H. E. P., & Clemente, J. M. (2011). O uso do cultivo hidropônico de plantas em pesquisas. Imprensa Universitária, UFV.

May, A., Bovi, O. A., Maia, N. B., Barata, L. E. S., Souza, R. C. Z., Souza, E. M. R., Moraes, A. R. A., & Pinheiro, M. Q. (2008). Basil plants growth and essential oil yield in a production system with successive cuts. Bragantia, 67(2), 385–389. doi: https://doi.org/10.1590/S0006-87052008000200014

Ninou, E., Mylonas, I., Ntatsi, G., Kougioumoutzis, K., & Paraskevopoulou, A. T. (2021). Nitrogen effects on the essential oil and biomass production of field grown Greek oregano populations. Agronomy, 11(9), 1722. doi: 10.3390/agronomy11091722

Nurzyńska Wierdak, R., Bogucka Kocka, A., Kowalski, R., & Borowski, B. (2012). Changes in the chemical composition of the essential oil of sweet basil (Ocimum basilicum L.) depending on the plant growth stage. Chemija, 23(3), 216-222.

Palaretti, L. F., Dalri, A. B., Dantas, G. F., Faria, R. T., Santos, W. F., & Santos, M. G. (2015). Produtividade do manjericão (Ocimum basilicum L.) fertirrigado utilizando vinhaça concentrada. Revista Brasileira de Agricultura Irrigada, 9(5), 326-334. doi: 10.7127/RBAI.V9N400234

Parsaeimehr, A., Chen, Y.-F., & Sargsyan, E. (2014). Bioactive molecules of herbal extracts with anti-infective and wound healing properties. In K. Kon & M. Rai (Eds.), Microbiology for surgical infections: Diagnosis, prognosis and treatment (pp. 205–220). Academic Press. doi: https://doi.org/10.1016/B978-0-12-411629-0.00012-X

Piras, A., Gonçalves, M. J., Alves, J., Falconieri, D., Porcedda, S., Maxia, A., & Salgueiro, L. (2018). Ocimum tenuiflorum L. and Ocimum basilicum L., two spices of Lamiaceae family with bioactive essential oils. Industrial Crops and Products, 113, 89-97. doi: https://doi.org/10.1016/j.indcrop.2018.01.024

Resh, H. M. (2013). Hydroponic food production: a definitive guidebook for the advanced home gardener and the commercial hydroponic grower (7th ed.). CRC Press.

Safaei, F., Alirezalu, A., Noruzi, P., & Alirezalu, K. (2024). Phytochemical and morpho-physiological response of Melissa officinalis L. to different NH4+ to NO3− ratios under hydroponic cultivation. BMC Plant Biology, 24, 1-19, 968. doi: 10.1186/s12870-024-05693-2

Senji, B. M., & Mandoulakani, B. A. (2018). The impact of cold stress on genes expression pattern of mono and sesquiterpene biosynthesis and their contents in Ocimum basilicum L. Phytochemistry, 156, 250-256. doi: 10.1016/j.phytochem.2018.09.002

Sifola, M. I., & Barbieri, G. (2006). Growth, yield and essential oil content of three cultivars of basil grown under different levels of nitrogen in the field. Scientia Horticulturae, 108(4), 408-413. doi: 10.1016/j.scienta.2006.02.002

Taiz, L., Zeiger, E., Møller, I. M., & Murphy, A. (2017). Fisiologia e desenvolvimento vegetal (6th ed.). Artmed.

Telci, I., Bayram, E., Yilmaz, G., & Avci, B. (2006). Variability in essential oil composition of Turkish basils (Ocimum basilicum L.). Biochemical Systematics and Ecology, 34(6), 489-497. doi: 10.1016/j.bse.2006.01.009

Vilanova, C. M., Coelho, K. P., Luz, T. R. S. A., Silveira, D. P. B., Coutinho, D. F., & Moura, E. G. (2018). Effect of different water application rates and nitrogen fertilisation on growth and essential oil of clove basil (Ocimum gratissimum L.). Industrial Crops and Products, 125, 186-191. doi: 10.1016/j.indcrop.2018.08.047

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Copyright (c) 2026 Deise Silva Castro Pimentel, Lucas Guilherme Hahn Kehl, Maira Christina Marques Fonseca, Herminia Emilia Prieto Martinez, Beatriz Fernandes de Seia Gonçalves, Edson Fagne dos Santos, Endy Lopes Kailer, Hair Santiago Lozano-Puente, Jaqueline Maria de Nascimento, Adilson Sartoratto

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