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Research Articles

Vol. 13 No. sp1 (2026): Recent Advances in Agriculture

Assessing the planting material size and light intensity levels for maximization of quality flower production in Heliconia cv. Golden Torch

DOI
https://doi.org/10.14719/pst.11605
Submitted
3 September 2025
Published
27-01-2026

Abstract

The cut-flower industry is witnessing rapid growth, with tropical ornamentals such as Heliconia commanding premium value for their vivid inflorescences and long vase life. Among production factors, light environment and propagule size critically influence growth and floral quality, yet their interactive effects remain poorly understood under Indian conditions. This two-year pot experiment (2022-2024) was conducted on the terrace garden of the Department of Floriculture and Landscaping, Faculty of Agricultural Sciences, Siksha ‘O’ Anusandhan University, Bhubaneswar, to evaluate the response of Heliconia psittacorum ‘Golden Torch’ to two light intensities (open sun, 100 %; 50 % shade net) and three rhizome sizes (single-, double- and triple-node cuttings) in a factorial completely randomised design with four replications. Results revealed that full sun accelerated sprouting (17.15 days vs 19.47 days), enhanced vegetative-to-flowering shoot conversion (136.8 % vs 105.1 %) and produced more spikes per clump (3.68 vs 3.30) as compared to 50 % shade net. In contrast, 50 % shade significantly improved floral quality, with longer inflorescences (24.23 vs 19.03 inch), longer stalks (18.30 vs 14.94 inch), higher chlorophyll content (6.82 vs 5.09 mg cm-2) and prolonged spike longevity (16.2 vs 10.3 days) than open sun (100 %). Propagule size strongly influenced performance: triple-node rhizomes (P₃) produced the tallest plants, the largest leaf area (1009 cm²), the maximum spikes (4.66 clump-1) and superior physiological efficiency. Notably, the P₃ rhizome under protected conditions yielded the highest-quality spikes, while double-node rhizome under open conditions promoted earliness and higher spike numbers. The study concluded that growers targeting export markets should adopt 50 % shade with P₃ rhizomes for premium floral quality, whereas full-sun culture with double-node cuttings is better suited for rapid turnover in domestic markets. These findings provide the first evidence-based recommendations for optimizing Heliconia production under coastal Odisha conditions and can guide future commercial scale-up. 

References

  1. 1. Gabellini S, Scaramuzzi S. Evolving consumption trends, marketing strategies and governance settings in ornamental horticulture: a grey literature review. Horticulturae. 2022;8(3):234. https://doi.org/10.3390/horticulturae8030234
  2. 2. Basantia D, Beura S. Flowering behaviour of some commercial Heliconia genotypes under coastal humid tropics of Odisha. Biol Forum Int J. 2022;14(5):47-9.
  3. 3. Broschat TK, Donselman H. Heliconias: a promising new cut flower crop. HortScience. 1983;18(1):2. https://doi.org/10.21273/HORTSCI.18.1.2
  4. 4. Broschat TK, Donselman HM. Effect of photoperiod on growth of West Indian mahogany. HortScience. 1983;18(2):206-7. https://doi.org/10.21273/HORTSCI.18.2.206
  5. 5. Criley RA, Kawabata O. Evidence for a short-day flowering response in Heliconia stricta 'Dwarf Jamaican'. HortScience. 1986;21(3):506-7. https://doi.org/10.21273/HORTSCI.21.3.506
  6. 6. Naik MD, Naik M, Kadiri L, Arunodhayam K, Reddy YS. Flowering, physiological and biochemical responses of Heliconia genotypes under shade house conditions. Curr Agric Res J. 2019;7(3). https://doi.org/10.12944/CARJ.7.3.13
  7. 7. Linares-Gabriel A, Gallardo-López F, Villarreal M, Landeros-Sánchez C, López-Romero G. Global vision of Heliconias research as cut flower: a review. Ornamental Hortic. 2020;26:633-46. https://doi.org/10.1590/2447-536x.v26i3.2172
  8. 8. Jobbagy EG, Jackson RB. The distribution of soil nutrients with depth: global patterns and the imprint of plants. Biogeochemistry. 2001;53(1):51-77. https://doi.org/10.1023/A:1010760720215
  9. 9. Rani U, Sharma MM, Ismail N, Batra A. In vitro plant regeneration from immature seeds of Murraya koenigii (L.) Spreng. Indian J Biotechnol. 2012;11(1):108-10.
  10. 10. dos Santos EA, Vacari AA, Ferreira DP, Cardoso FA, Lemes EM, Barroso GM, et al. Physiology and development of soybean under light supplementation treated with herbicides in the field. Agronomy. 2024;14(4):824. https://doi.org/10.3390/agronomy14040824
  11. 11. dos Santos BS, Mendonça GW, Ferreira TC, Bomfim NC, de Carvalho IF, Aguilar JV, et al. Exploring the potential of Crotalaria juncea L. for phytoremediation: insights from gas exchange, pigment quantification and growth measurements under copper stress. Horticulturae. 2024;10(7):746. https://doi.org/10.3390/horticulturae10070746
  12. 12. Lopp J, Sammul M. The impact of timing of resource availability on clonal propagation of species with different growth forms. Folia Geobot. 2017;52(3):411-22. https://doi.org/10.1007/s12224-017-9299-7
  13. 13. Ribeiro MN, Santos EB, Almeida EF, Nunes CF. Fertilization and intercropping with medicinal plants and edible flowers in the agroecological cultivation of tropical flowers. Acta Hortic. 2024; 1417:279-84. https://doi.org/10.17660/ActaHortic.2025.1417.33
  14. 14. Castro E, Rodríguez R, Arosemena A. Response of Heliconia spp. to different light conditions under tropical environments. Trop Agric. 2011;88(2):89-98.
  15. 15. Chawla SL, Prasad VM, Singh R. Influence of light intensity and microclimate modification on growth, flowering and postharvest attributes of tropical ornamental species. Int J Curr Microbiol Appl Sci. 2019;8(3):2455-64.
  16. 16. Costa AS, Loges V, Castro ACR, Teixeira MCF, Aragão FAS, Willadino L. Heliconia cultivation: effects of shade levels on growth and flowering. Bragantia. 2009;68(4):1115-26.
  17. 17. Loges V, Teixeira MCF, Muller MO, Castro ACR, Costa AS. Floral development, longevity and quality of Heliconia under different environmental conditions. Sci Hortic. 2012; 138:59-66.
  18. 18. Safeena SA, Ashoka P, Ramesh GK. Effect of shade intensities on growth, physiology and floral attributes of Heliconia. J Trop Crop Sci. 2023;10(2):155-62.
  19. 19. Zhang P, Huang J, Ma Y, Wang X, Kang M, Song Y. Crop/plant modeling supports plant breeding: II. guidance of functional plant phenotyping for trait discovery. Plant Phenomics. 2023; 5:0091. https://doi.org/10.34133/plantphenomics.0091
  20. 20. Zhang YL, Gessler A, Lehmann MM, Saurer M, Diao H, Lambers JH, et al. Trees use exogenous sugars for growth, but excess triggers negative feedback reducing photosynthetic carbon gain. Tree Physiol. 2025; tpaf092. https://doi.org/10.1093/treephys/tpaf092
  21. 21. Jensen F. Introduction to computational chemistry. Hoboken: John Wiley & Sons; 2017.
  22. 22. Jensen WA. Response surface methodology: process and product optimization using designed experiments. 4th ed. John Wiley & Sons; 2016.
  23. 23. Sharma D, Singh R, Tiwari R, Kumar R, Gupta VK. Wheat responses and tolerance to terminal heat stress: a review. In: Wheat production in changing environments: responses, adaptation and tolerance. 2019:149-73. https://doi.org/10.1007/978-981-13-6883-7_7

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