Abstract
This study examined the effects of photoperiod extension (16-hour day) and growth retardant application during the liner stage (weeks 5–11) on nutrient uptake and plant quality in two Bidens ferulifolia cultivars (Fire&Spicy and Hot&Spicy). Treatments included supplemental lighting (L), growth retardant (R), both (L-R), and a control (NL-NR). Mature plants were assessed for plant architecture, flowering, nutrient status, photosynthetic pigments, and soluble sugars. All plants branched vigorously, but L-R produced the most commercially favourable structure, with fewer long shoots and more short ones. L-R also yielded the shortest shoots and highest dry mass, especially in Hot&Spicy alongside increased P and Zn. Retardants reduced fresh mass but increased levels of N, P, K, S, and Cu, while decreasing Fe and Mn. Light-treated plants have more fully open flowers but had similar bud numbers. Supplemental light improved nutrient accumulation, chlorophyll a, carotenoids, and sugar content, indicating better physiological efficiency. Cultivars responded differently to R, with Fire&Spicy showing greater micronutrient uptake. Combining light and retardant during the liner stage enhances visual quality and nutrient efficiency in B. ferulifolia, offering growers a strategy to improve crop performance while potentially reducing reliance on chemical growth regulation.
References
- Abdullah, S., Munir, M., Javed, B., Ahmad, M., Abbasi, B.A., Dawood, S., Zhang, L. (2025). The systematics and biogeography of genus Bidens. In: Bibi, Y., Zahara, K., Qayyum, A., Jenks, M.A. (eds). The genus Bidens chemistry and pharmacology, Springer, Singapore, 3–20. https://doi.org/10.1007/978-981-96-4257-1_1
- Adams, S.R., Langton, F.A. (2005). Photoperiod and plant growth: a review. J. Hortic. Sci. Biotechnol., 80(1), 2–10. https://doi.org/10.1080/14620316.2005.11511882
- Barker, A.V., Pilbeam, D.J. (2015). Handbook of plant nutrition. 2nd ed. CRC Press, Taylor & Francis Group: Boca Raton–London–New York.
- Bergstrand, K.J.I. (2017). Methods for growth regulation of greenhouse produced ornamental pot-and bedding plants – a current review. Folia Hortic., 29(1), 63–74. https://doi.org/10.1515/fhort-2017-0007
- Bergstrand, K.J.I., Schüssler, H.K. (2012). Growth and photosynthesis of ornamental plants under different light qualities. Acta Hortic., 956, 109–115. https://doi.org/10.17660/ActaHortic.2012.956.13
- Brandon, M., Kozai, T., Lu, N., Yamaguchi, T., Takagaki, M., Maruo, T., Yamori, W. (2018). Next revolution of agriculture. A review of innovations in plant factories. In: Pessarakli, M. (eds). Handbook of Photosynthesis. 3rd ed. CRC Press, Taylor & Francis Group, Boca Raton–London–New York, 723–737.
- Brini, F., Mseddi, K., Brestic, M., Landi, M. (2022). Hormone-mediated plant responses to light quality and quantity. Environ. Exp. Bot. 202, 105026. https://doi.org/10.1016/j.envexpbot.2022.105026
- Bryson, G.M., Mills, H.A. (2014). Plant analysis handbook. A guide to plant nutrition and interpretation of plant analysis for agronomic and horticultural crops. Micro-Macro Publishing, Inc. Georgia.
- Bueno, P.M.C., Vendrame W.A. (2024). Wavelength and light intensity affect macro- and micronutrient uptake, stomata number, and plant morphology of common bean (Phaseolus vulgaris L.). Plants 13(3), 441. https://doi.org/10.3390/plants13030441
- Collado, C.E., Hernández, R. (2022). Effects of light intensity, spectral composition, and paclobutrazol on the morphology, physiology, and growth of petunia, geranium, pansy, and dianthus ornamental transplants. J. Plant Growth Regul. 41, 461–478. https://doi.org/10.1007/s00344-021-10306-5
- Dische, Z. (1962). General color reactions. In: Whistler R.L., Wolfram, M.L. (eds). 187 Carbohydrate chemistry. Academic Press, New York, 477–512.
- Dwyer, M. (2022). Bidens spp. Greenhouse management. Available: https://www.greenhousemag.com/article/bidens-durable-annuals/ [date of access: 26.07.2025].
- Epstein, E., Bloom, A.J. (2005). Mineral nutrition of plants: principles and perspectives. 2nd ed. Sunderland, Mass Sinauer Associates, Inc.
- Faust, J.E., Dole, J.M., Lopez, R.G. (2016). The floriculture vegetative cutting industry. Hortic. Rev. 44(44), 121–172. https://doi.org/10.1002/9781119281269.ch3
- Gent, M.P., McAvoy, R.J. (2024). Plant growth retardants in ornamental horticulture: A critical appraisal. In: Basra, A. (ed.). Plant growth regulators in agriculture and horticulture, CRC Press, Taylor & Francis Group, Boca Raton–London–New York, 89–145. https://doi.org/10.1201/9781003578505
- Jiang, K., Peng, S., Yin, Z., Li, X., Xie, L., Shen, M., Li, D., Gao, J. (2024). Effects of N, P, K nutrition levels on the growth, flowering attributes and functional components in Chrysanthemum morifolium. Horticulturae, 10(3), 226. https://doi.org/10.3390/horticulturae10030226
- Jun, S.E., Shim, J.S., Park, H.J. (2023). Beyond NPK: mineral nutrient-mediated modulation in orchestrating flowering time. Plants 12, 3299. https://doi.org/10.3390/plants12183299
- Kowalczyk, K., Mirgos, M., Sobczak-Samburska, A., Przybył, J.L., Kowalczyk, W., Geszprych, A., Kalisz, S., Łaźny, R., Gajewski, M., Gajc-Wolska, J. (2024). Effect of growing pink tomato plants with LED supplementary lighting in a greenhouse covered with diffusion glass on post-harvest fruit quality. Acta Sci. Pol. Hortorum Cultus, 23(6), 57–74. https://doi.org/10.24326/asphc.2024.5374
- Liebers, M., Pfannschmidt, T. (2024). New horizons in light control of plant photomorphogenesis and development. Front. Photobiol. 1, 1346705. https://doi.org/10.3389/fphbi.2023.1346705
- Llewellyn, D., Schiestel, K., Zheng, Y. (2020). Increasing levels of supplemental LED light enhances the rate of flower development of greenhouse-grown cut gerbera. Agronomy, 10(9), 1332. https://doi.org/10.3390/agronomy10091332
- Marschner, P. (2012). Mineral nutrition of higher plants. Academic Press Elsevier. https://doi.org/10.1016/C2009-0-63043-9
- McLoughlin, K.T. (2000). Tree growth regulators for management of trees in electric utility rights-of-way. A literature review and current status. Final Report. Electric Power Research Institute, Inc., Pleasant Hill, USA. Available: https://www.epri.com/research/products/1000317 [date of access: 26.07.2025].
- Meng, Q., Runkle, E.S. (2014). Controlling flowering of photoperiodic ornamental crops with light-emitting diode lamps: a coordinated grower trial. HortTechnology, 24(6), 702–711. https://doi.org/10.21273/HORTTECH.24.6.702
- Morrow, R.C. (2008). LED lighting in horticulture. HortScience, 43(7), 1947–1950. https://doi.org/10.21273/HORTSCI.43.7.1947
- Munir, M., Alhajhoj, M.R. (2017). Plant height control of obligate long day herbaceous annuals using plant growth retardants and light. J. Appl. Hortic., 19(3), 241–244.
- Nau, J., Calkins, B., Westbrook, A. (2021). Crop culture Bidens. In: Nau, J., Calkins, B., Westbrook, A. (eds). Ball RedBook Crop culture and production. Ball Publishing, Chicago.
- Nowak, J. (2003). Wpływ stężenia pożywki i retardantów wzrostu na wzrost i kwitnienie uczepu złocistego (Bidens aurea (Ait.) Scheriff) [The effect of nutrient solution concentration and growth retardants on growth and flowering of bidens (Bidens aurea (Ait.) Scheriff)]. Zesz. Probl. Postęp. Nauk Rol. 491, 181–186. [In Polish].
- PN-ISO 6496:2002. Pasze. Oznaczanie wilgoci i innych substancji lotnych. Polski Komitet Normalizacyjny. [Feed. Determination of moisture and other volatile substances. Polish Committee for Standardization].
- PN-EN ISO 712:2012. Zboża i przetwory zbożowe. Oznaczanie wilgotności. Rutynowa metoda odniesienia. Polski Komitet Normalizacyjny. [Cereals and cereal products. Determination of moisture. Routine reference method. Polish Committee for Standardization].
- Pobudkiewicz, A. (2008). The influence of growth retardants and cytokinins on flowering of ornamental plants. Acta Agrobot., 61(1), 137–141. https://doi.org/10.5586/aa.2008.018
- Rademacher, W. (2000). Growth retardants: effects on gibberellin biosynthesis and other metabolic pathways. Ann. Rev. Plant Biol., 51(1), 501–531. https://doi.org/10.1146/annurev.arplant.51.1.501
- Runkle, E.S. (2007). Maximizing supplemental lighting for greenhouse crops. Michigan State University MSU Extension. Available: https://www.canr.msu.edu/resources/maximizing_supplemental_lighting [date of access: 26.07.2025].
- Runkle, E.S., Blanchard, M.G., Faust, J.E. (2011). Energy-efficient greenhouse lighting of ornamentals. Acta Hortic. 907, 37–44. https://doi.org/10.17660/ActaHortic.2011.907.4
- Sáez-Plaza, P., Navas, M.J., Wybraniec, S., Michałowski, T., Asuero, A.G. (2013). An overview of the Kjeldahl method of nitrogen determination. Part II. Sample preparation, working scale, instrumental finish, and quality control. Crit. Rev. Anal. Chem. 43(4), 224–272. https://doi.org/10.1080/10408347.2012.751787
- Sumanta, N., Haque, C.I., Nishika, J., Suprakash, R. (2014). Spectrophotometric analysis of chlorophylls and carotenoids from commonly grown fern species by using various extracting solvents. Res. J. Chem. Sci., 4(9), 63.
- Szewczyk-Taranek, B., Domagała-Świątkiewicz, I., Kapczyńska, A., Marcinkowski, P., Pawłowska, B. (2025). Supplementary light and retardant application during the rooting stage improve the final performances of Petunia and Calibrachoa plants. Agronomy, 15(7), 1644. https://doi.org/10.3390/agronomy15071644
- Vyavahare, G.D., Kim, J.Y., Kim, H.N., Sin, S.K., Kim, E.J., Park, J.H. (2024). Evaluating the effect of supplementary lighting on the growth and physiological activity of roses during winter by plant-induced electrical signal. Folia Hort., 36(4), 1–13. https://doi.org/10.2478/fhort-2024-0033
- Walliser, B., Marinovic, S., Kornpointner, C., Schlosser, C., Abouelnasr, M., Hutabarat, O.S., Haselmair-Gosch, Ch., Molitor, Ch., Stich, K., Halbwirth, H. (2022). The (Bio) chemical base of flower colour in Bidens ferulifolia. Plants, 11(10), 1289. https://doi.org/10.3390/plants11101289
- Whipker, B.E. (2019). Plant growth regulators for annuals. Grower Talks Mag. Ball Publishing, West Chicago, IL. Available: https://www.growertalks.com/pdf/Annuals_PGR_Guide_2019.pdf [date of access: 20.07.2025].
- Wollaeger, H.M., Runkle, E.S. (2014). Producing commercial-quality ornamental seedlings under sole-source LED lighting. Acta Hortic. 1037, 241–248. https://doi.org/10.17660/ActaHortic.2014.1037.31
- Zhang, Y., Liu, B., Kong, F., Chen, L. (2023). Nutrient-mediated modulation of flowering time. Front. Plant Sci. 14, 1101611. https://doi.org/10.3389/fpls.2023.1101611
- Zheng, R., Wu, Y., Xia, Y. (2012). Chlorocholine chloride and paclobutrazol treatments promote carbohydrate accumulation in bulbs of Lilium oriental hybrids ‘Sorbonne’. J. Zhejiang Univ. Sci. B, 13(2), 136–144. https://doi.org/10.1631/jzus.B1000425
Downloads
Download data is not yet available.
-
Sibgha Noreen,
Ayesha Siddiq,
Kousar Hussain,
Shakeel Ahmad,
Mirza Hasanuzzaman,
FOLIAR APPLICATION OF SALICYLIC ACID WITH SALINITY STRESS ON PHYSIOLOGICAL AND BIOCHEMICAL ATTRIBUTES OF SUNFLOWER (Helianthus annuus L.) CROP
,
Acta Scientiarum Polonorum Hortorum Cultus: Vol. 16 No. 2 (2017)
-
Olivera Ilić,
Ljiljana Nikolić,
Žarko Ilin,
Andjelko Mišković,
Vuk Vujasinović,
Branimir Kukić,
EFFECT OF CULTURAL PRACTICES ON WEEDS COMMUNITY IN FUNCTION OF POTATO YIELD
,
Acta Scientiarum Polonorum Hortorum Cultus: Vol. 15 No. 5 (2016)
-
Dariusz Wach,
Jacek Gawroński,
Magdalena Dyduch-Siemińska,
Elżbieta Kaczmarska,
Marzena Błażewicz-Woźniak,
PHENOTYPIC AND GENOTYPIC VARIABILITY OF CULTIVARS OF HIGHBUSH BLUEBERRY (Vaccinium corymbosum L.) GROWN IN THE LUBLIN REGION
,
Acta Scientiarum Polonorum Hortorum Cultus: Vol. 15 No. 6 (2016)
-
Elżbieta Paduch-Cichal,
Maria Chorodorska,
Elżbieta Kalinowska,
Beata Komorowska,
YEAR-ROUND BLUEBERRY SCORCH VIRUS DETECTION IN HIGHBUSH BLUEBERRY
,
Acta Scientiarum Polonorum Hortorum Cultus: Vol. 13 No. 3 (2014)
-
Katarzyna Wróblewska,
Regina Dębicz,
INFLUNCE OF TIME OF BENZYLADENINE APPLICATION ON ROOTING OF CUTTINGS AND SUBSEQUENT DEVELOPMENT OF Portulaca umbraticola Kunth
,
Acta Scientiarum Polonorum Hortorum Cultus: Vol. 12 No. 1 (2013)
-
Kashif Mukhtar,
Irfan Afzal,
Muhammad Qasim,
Shahzad Maqsood Ahmad Basra,
Muhammad Shahid,
DOES PRIMING PROMOTE GERMINATION AND EARLY STAND ESTABLISHMENT OF FRENCH MARIGOLD (Tagetes patula L.) SEEDS BY INDUCING PHYSIOLOGICAL AND BIOCHEMICAL CHANGES?
,
Acta Scientiarum Polonorum Hortorum Cultus: Vol. 12 No. 3 (2013)
-
Halina Kurzawińska,
Stanisław Mazur,
Małgorzata Nadziakiewicz,
Jacek Nawrocki,
WEEDS IN POTATO CULTURE AND THEIR OUTCOME IN SPREADING OF Alternaria spp.
,
Acta Scientiarum Polonorum Hortorum Cultus: Vol. 17 No. 6 (2018)
-
Justyna Lema-Rumińska,
Dariusz Kulus,
INDUCTION OF SOMATIC EMBRYOGENESIS IN Astrophytum asterias (Zucc.) Lem. IN THE ASPECT OF LIGHT CONDITIONS AND AUXIN 2,4-D CONCENTRATIONS
,
Acta Scientiarum Polonorum Hortorum Cultus: Vol. 11 No. 4 (2012)
-
Beata Król,
YIELD AND THE CHEMICAL COMPOSITION OF FLOWER HEADS OF POT MARIGOLD (Calendula officinalis L. cv. Orange King) DEPENDING ON NITROGEN FERTILIZATION
,
Acta Scientiarum Polonorum Hortorum Cultus: Vol. 10 No. 2 (2011)
-
Agata Kozłowska,
Włodzimierz Breś,
Włodzimierz Krzesiński,
Tomasz Trelka,
THE EFFECT OF AMOUNT OF LIGHT AND THE TEMPERATURE ON BIOMORPHOLOGICAL CHARACTERISTICS OF CHRYSANTHEMUMS DURING ALL-YEAR CULTURE
,
Acta Scientiarum Polonorum Hortorum Cultus: Vol. 10 No. 3 (2011)
<< < 88 89 90 91 92 93 94 95 96 97 > >>
You may also start an advanced similarity search for this article.