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Research Article

Seaweed extracts elicitation improves leaf and essential oil production on Pelargonium graveolens L. Herit

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Received 29 Feb 2024, Accepted 06 May 2024, Published online: 28 May 2024

References

  • E.F. Ali, F.A.S. Hassan and M. Elgimabi, Improving the growth, yield and volatile oil content of pelargonium graveolens L. Herit by foliar application with moringa leaf extract through motivating physiological and biochemical parameters. South African Journal of Botany, 119, 383–389 (2018). doi: 10.1016/j.sajb.2018.10.003
  • M. Sandasi, G. Kamatou and N. Mulaudzi. Pelargonium graveolens. The South African Herbal Pharmacopoeia. Academic Presspp. 387–406. 2023
  • E. Seo, Y. Cho, J.M. Lee and G.H. Seol, Inhalation of pelargonium graveolens essential oil alleviates pain and related anxiety and stress in patients with lumbar spinal stenosis and moderate to severe pain. Pharmaceuticals, 2023, 17(1), 1–12. doi: 10.3390/ph17010001
  • B. Blerot, S. Baudino, C. Prunier, F. Demarne, B. Toulemonde and J.C. Caissard, Botany, agronomy and biotechnology of pelargonium used for essential oil production. Phytochemistry Reviews, 15(5), 935–960 (2016). doi: 10.1007/s11101-015-9441-1
  • A. Misra and N.K. Srivastava, Value addition of essential monoterpene oil (s) in geranium (pelargonium graveolens) on leaf positions for commercial exploitation. African Journal of Agricultural Research, 2010, 5(15), 2077–2079. doi: 10.5897/AJAR09.189
  • A. Misra, A.K. Srivastava, N.K. Srivastava and A. Khan, Zn-acquisition and its role in growth, photosynthesis, photosynthetic pigments, and biochemical changes in essential monoterpene oil (s) of pelargonium graveolens. Photosynthetica, 43(1), 153–155 (2005). doi: 10.1007/s11099-005-3155-3
  • H. Rafiee, H.A.N. Badi, A. Mehrafarin, A. Qaderi, N. Zarinpanjeh, A. Sękara and E. Zand, Application of plant biostimulants as new approach to improve the biological responses of medicinal plants - a critical review. Journal of Medicinal Plants, 2016, 3(59), 6–39.
  • O.I. Yakhin, A.A. Lubyanov, I.A. Yakhin and P.H. Brown, Biostimulants in plant science: a global perspective. Frontiers in Plant Science, 7, 1–32 (2017). doi: 10.3389/fpls.2016.02049
  • O. Ali, A. Ramsubhag and J. Jayaraman, Biostimulant properties of seaweed extracts in plants: implications towards sustainable crop production. Plants, 2021, 10(3), 1–27. doi: 10.3390/plants10030531
  • O. Ali, A. Ramsubhag, J. Jayaraman and Y. Lou, Biostimulatory activities of Ascophyllum nodosum extract in tomato and sweet pepper crops in a tropical environment. Public Library of Science ONE, 14(5), 1–19 (2019). doi: 10.1371/journal.pone.0216710
  • A.A. Waly, A. EL-Fattah, M.A.E. Hassan, E.A.E. El-Ghadban and A.S.A. Alla, Effect of foliar spraying with seaweeds extract, chitosan and potassium silicate on Rosmarinus officinalis L. plants in sandy soil. Scientific Journal of Flowers and Ornamental Plants, 6(3), 191–209 (2019). doi: 10.21608/sjfop.2019.92322
  • W. Kandoudi and É. Németh-Zámboriné, Stimulating secondary compound accumulation by elicitation: is it a realistic tool in medicinal plants in vivo?. Phytochemistry Reviews, 21(6), 1–19 (2022). doi: 10.1007/s11101-022-09822-3
  • M. Choulot, I. Michalak, L. Jing, A. Szymczycha-Madeja, M. Wełna, N. Bourgougnon and C. Le Guillard, The Enzyme-assisted extraction of compounds of interest in agriculture: case study of the red seaweed solieria chordalis (C. Agardh). J Agardh Algal Research, 75, 1–10 (2023). doi: 10.1016/j.algal.2023.103239
  • R.D.B. Ducatti, J.A. Wordell Filho, S.P. Tironi and S.M. Mazaro, Photosynthesis, salicylic acid content and enzyme activity of Triticum aestivum L. influenced by the use of a seaweed biostimulant based on solieria chordalis. Journal of Plant Growth Regulation, 1–8 2024. 10.1007/s00344-023-11214-6
  • W. Huang, D.A. Ratkowsky, C. Hui, P. Wang, J. Su and P. Shi, Leaf fresh weight versus dry weight: which is better for describing the scaling relationship between leaf biomass and leaf area for broad-leaved plants?. Forests, 2019, 10(3), 1–19. doi: 10.3390/f10030256
  • D.A. Sims and J.A. Gamon, Relationships between leaf pigment content and spectral reflectance across a wide range of species, leaf structures and developmental stages. Remote Sensing of Environment, 81(2–3), 337–354 (2002). doi: 10.1016/S0034-4257(02)00010-X
  • M. Dubois, K. Giles, J.K. Hamilton, P.A. Rebers and F. Smith, Colorimetric method for determination of sugars and relates substances. Annals of Chemistry, 28(3), 350–356 (1956). doi: 10.1021/ac60111a017
  • H. Van Den Dool and P.D. Kratz, A generalisation of the retention index system including linear temperature programmed gas-liquid chromatography. Journal of Chromatography, 11, 463–471 (1963). doi: 10.1016/S0021-9673(01)80947-X
  • R.P. Adams, Identification of Essential Oil Components by Gas Chromatography/Mass Spectrometry. 4.1 edn, Allured Publishing Corporation, Carol Stream, (2017)
  • M. Boukhris, M.B. Nasri-Ayachi, I. Mezghani, M. Bouaziz, M. Boukhris and S. Sayadi, Trichomes morphology, structure and essential oils of pelargonium graveolens L’hér (Geraniaceae). Industrial Crops and Products, 50, 604–610 (2013). doi: 10.1016/j.indcrop.2013.08.029
  • R.S. Verma, L. Rahman, R.K. Verma, A. Chauhan and A. Singh, Essential oil composition of pelargonium graveolens L’Her ex Ait. cultivars harvested in different seasons. Journal of Essential Oil Research, 2013, 25(5), 372–379. doi: 10.1080/10412905.2013.782476
  • P.L. Godínez-Mendoza, A.K. Rico-Chávez, N.I. Ferrusquía-Jimenez, I.A. Carbajal-Valenzuela, A.L. Villagómez-Aranda, I. Torres-Pacheco and R.G. Guevara-González, Plant hormesis: revising of the concepts of biostimulation, elicitation and their application in a sustainable agricultural production. Science of the Total Environment, 894, 1–15 (2023). doi: 10.1016/j.scitotenv.2023.164883
  • L. Jannin, M. Arkoun, P. Etienne, P. Laîné, D. Goux, M. Garnica, M. Fuentes, S.S. Francisco, R. Baigorri, F. Cruz, F. Houdusse, J.M. Garcia-Mina, J. Yvin and A. Ourry, Brassica napus growth is promoted by Ascophyllum nodosum (L.) Le Jol. Seaweed extract: microarray analysis and physiological characterization of N, C, and S metabolisms. Journal of Plant Growth Regulation, 32(1), 31–52 (2013). doi: 10.1007/s00344-012-9273-9
  • A. González, J. Castro, J. Vera and A. Moenne, Seaweed oligosaccharides stimulate plant growth by enhancing carbon and nitrogen assimilation, basal metabolism, and cell division. Journal of Plant Growth Regulation, 32(2), 443–448 (2013). doi: 10.1007/s00344-012-9309-1
  • H.O. Elansary, K. Yessoufou, S. Shokralla, E.A. Mahmoud and K. Skalicka-Woźniak, Enhancing mint and basil oil composition and antibacterial activity using seaweed extracts. Industrial Crops and Products, 92, 50–56 (2016). doi: 10.1016/j.indcrop.2016.07.048
  • A.O. Tursun and S. Ali, Effect of foliar application of seaweed (organic fertilizer) on yield, essential oil and chemical composition of coriander. Public Library of Science ONE, 17(6), 1–14 (2022). doi: 10.1371/journal.pone.0269067
  • F. Rasouli, Y. Nasiri, M.B. Hassanpouraghdam, M. Asadi, T. Qaderi, A. Trifa, M. Strzemski, S. Dresler and M. Szczepanek, Seaweed extract and arbuscular mycorrhiza co-application affect the growth responses and essential oil composition of foeniculum vulgare L. Scientific Reports, 13(1), 1–13 (2023). doi: 10.1038/s41598-023-39194-3
  • E. Ramos Melo, E. Gomes Fabri, H.M. Magalhães, P.H. Gorni and A.C. Pacheco, In vivo elicitation is efficient in increasing essential oil yield with high anti-inflammatory sesquiterpene content in Varronia curassavica jacq. Chilean Journal of Agricultural Research, 2023, 83(3), 369–379. doi: 10.4067/S0718-58392023000300369
  • A. Tawfeeq, A. Culham, F. Davis and M. Reeves, Does fertilizer type and method of application cause significant differences in essential oil yield and composition in rosemary (Rosmarinus officinalis L.)?. Industrial Crops and Products, 88, 17–22 (2016). doi: 10.1016/j.indcrop.2016.03.026
  • H. Taheri, Transcriptional modulation of structural and regulatory genes involved in isoprene biosynthesis and their relevance to oil yield and menthol content in peppermint (Mentha piperita L.) upon MeJA and GA 3 treatments. Russian Journal of Plant Physiology, 66(3), 503–508 (2019). doi: 10.1134/S1021443719030142

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