Physiology and Biochemistry of Flower Senescence: Mechanisms, Regulation and Implications for Postharvest Longevity

Authors

  • Shrishty kumari Department of Floriculture and Landscaping, Dr. Yashwant Singh Parmar University of Horticulture and Forestry, Nauni - 173 230, Solan, Himachal Pradesh, India
  • Suman Bhatia Department of Floriculture and Landscaping, Dr. Yashwant Singh Parmar University of Horticulture and Forestry, Nauni - 173 230, Solan, Himachal Pradesh, India
  • Swati Department of Floriculture and Landscaping, Dr. Yashwant Singh Parmar University of Horticulture and Forestry, Nauni - 173 230, Solan, Himachal Pradesh, India

DOI:

https://doi.org/10.48165/jefa.2026.21.2.1

Keywords:

Senescence, physiological, postharvest, floral longevity

Abstract

Flower senescence represents a genetically programmed and tightly regulated terminal phase of floral development that plays a critical role in reproductive success and postharvest performance of ornamental and horticultural crops. This review provides a comprehensive synthesis of the physiological and biochemical processes governing flower senescence, with emphasis on hormonal control, metabolic alterations and cellular signaling mechanisms. Ethylene acts as a primary regulator in many species by inducing senescence associated gene expression, whereas ethylene independent pathways also contribute to senescence regulation, reflecting species specific variability. Key physiological changes include deterioration of membrane integrity, disruption of water relations, reduced respiratory efficiency and loss of cellular homeostasis. Biochemically, senescence is marked by enhanced generation of reactive oxygen species, lipid peroxidation, degradation of proteins and nucleic acids and coordinated modulation of antioxidant defence systems. Alterations in carbohydrate metabolism, sugar signaling and secondary metabolites further influence the progression of senescence. The review has also highlighted the roles of calcium signaling, polyamines, nitric oxide and programmed cell death in regulating senescence responses. Understanding of these integrated physiological and biochemical mechanisms is essential for developing effective strategies to extend floral longevity and improve postharvest quality.

Downloads

Download data is not yet available.

References

Agbaria, H., Zamski, E. and Zieslin, N. (2001). Effects of gibberellin on senescence of rose flower petals. Acta Horticulturae, 547, 269–276. https://doi.org/10.17660/ActaHortic.2001.547.32

Arteca, R.N. (1996). Abscission. In: Plant Growth Substances. Springer, Boston, MA. https://doi.org/10.1007/978-1-4757-2451-6_9

Bleecker, A. B. and Kende, H. (2000). Ethylene: A gaseous signal molecule in plants. Annual Review of Cell and Developmental Biology, 16, 1–18.

Foyer, C. H. and Noctor, G. (2005). Redox homeostasis and antioxidant signaling: A metabolic interface between stress perception and physiological responses. The Plant Cell, 17(7), 1866–1875. https://doi.org/10.1105/tpc.105.033589

Gan, S. and Amasino, R. M. (1995). Inhibition of leaf senescence by autoregulated production of cytokinin. Science, 270(5244), 1986–1988.

Gan, S. and Amasino, R. M. (1997). Making sense of senescence: Molecular genetic regulation and manipulation of leaf senescence. Plant Physiology, 113(2), 313–319. https://doi.org/10.1126/science.270.5244.1986

Guo Y and Gan S. 2005. Leaf senescence: signals, execution and regulation. Current Topics in Developmental Biology. 71:83–112. https://doi.org/10.1016/S0070-2153(05)71003-6

Hörtensteiner S. (2006). Chlorophyll degradation during senescence. Annual review of plant biology, 57, 55–77. https://doi.org/10.1146/annurev.arplant.57.032905.105212

Hörtensteiner, S. and Feller, U. (2002). Nitrogen metabolism and remobilization during senescence. Journal of Experimental Botany, 53(370), 927–937. https://doi.org/10.1093/jexbot/53.370.927

Huffaker R. C. (1990). Proteolytic activity during senescence of plants. The New phytologist, 116, 199–231. https://doi.org/10.1111/j.1469-8137.1990.tb04710.x.

Ichimura, K. (2018). Postharvest physiology and technology for cut flowers: Recent progress and future aspects. Horticultural Research (Japan, 17(3), 279–292. https://doi.org/10.2503/hrj.17.279

Jiang, J., Ma, S., Ye, N., Jiang, M., Cao, J. and Zhang, J. (2017). WRKY transcription factors in plant responses to stresses. Journal of integrative plant biology, 59(2), 86–101. https://doi.org/10.1111/jipb.12513

Jones, M. L. (2013). Mineral nutrient remobilization during corolla senescence in ethylene-sensitive and ethylene-insensitive flowers. AoB Plants, 5, plt023 doi: 10.1093/aobpla/plt023.

Kim, J., Woo, H. R. and Nam, H. G. (2016). Toward Systems Understanding of Leaf Senescence: An Integrated Multi-Omics Perspective on Leaf Senescence Research. Molecular plant, 9(6), 813–825. https://doi.org/10.1016/j.molp.2016.04.017

Li, C., Xu, M., Cai, X., Han, Z., Si, J. and Chen, D. (2022). Jasmonate signaling pathway modulates plant defense, growth and their trade-offs. International Journal of Molecular Sciences, 23(7), 3945. https://doi.org/10.3390/ijms23073945

Lim, P. O., Kim, H. J. and Nam, H. G. (2007). Leaf senescence. Annual Review of Plant Biology, 58, 115–136.

Matile, P. and Winkenbach, F. (1971). Function of lysosomes and lysosomal enzymes in senescing corolla of morning glory (Ipomoea purpurea). Journal of Experimental Botany, 22(4), 759–771.

Mayak, S. and Halevy, A. H. (1972). Interrelationships of ethylene and abscisic Acid in the control of rose petal senescence. Plant physiology, 50(3), 341–346. https://doi.org/10.1104/pp.50.3.341

O’Neill, S. D. (1997). Pollination regulation of flower development. Annual Review of Plant Physiology and Plant Molecular Biology, 48, 547–574.

O’Neill, S. D., Nadeau, J. A., Zhang, X. S., Bui, A. Q. and Halevy, A. H. (1993). Interorgan regulation of ethylene biosynthetic genes by pollination. The Plant Cell, 5(4), 419–432. https://doi.org/10.1105/tpc.5.4.419.

Podzimska-Sroka, D., O'Shea, C., Gregersen, P. L. and Skriver, K. (2015). NAC Transcription Factors in Senescence: From Molecular Structure to Function in Crops. Plants (Basel, Switzerland), 4(3), 412–448. https://doi.org/10.3390/plants4030412

Halevy, A. H. and Mayak, S. (1981). Senescence and postharvest physiology of cut flowers—Part 2. Horticultural Reviews, 3, 59–143.

Reid, M. S. and Wu, M. J. (1992). Ethylene and flower senescence. Plant Growth Regulation, 11, 37–43.

Roberts, J. A., Elliott, K. A. and Gonzalez-Carranza, Z. H. (2002). Abscission, dehiscence and other cell separation processes. Annual Review of Plant Biology, 53, 131–158.

Rogers, H. J. (2012). Is there an important role for reactive oxygen species and redox regulation during floral senescence? Plant, Cell and Environment, 35(2), 217–233.

Shibuya, K., Yamada, T. and Ichimura, K. (2016). Morphological changes in senescing petal cells and the regulatory mechanism of petal senescence. Journal of experimental botany, 67(20), 5909–5918. https://doi.org/10.1093/jxb/erw337

Shimizu-Yumoto, H. and Ichimura, K. (2010). Postharvest physiology and technology of cut Eustoma flowers. Journal of the Japanese Society for Horticultural Science, 79(3), 227–238. https://doi.org/10.2503/jjshs1.79.227

Smalle, J. and Vierstra, R. D. (2004). The ubiquitin 26S proteasome proteolytic pathway. Annual review of plant biology, 55, 555–590. https://doi.org/10.1146/annurev.arplant.55.031903.141801

Taylor, J. E. and Whitelaw, C. A. (2001). Signals in abscission. New Phytologist, 151(2), 323–340. https://doi.org/10.1046/j.0028-646x.2001.00194.x

Thomas, H., Huang, L., Young, M. et al. Evolution of plant senescence. BMC Evol Biol 9, 163 (2009). https://doi.org/10.1186/1471-2148-9-163

Thompson, J. E., Froese, C. D., Madey, E., Smith, M. D. and Hong, Y. (1998). Lipid metabolism during plant senescence. Progress in lipid research, 37(2-3), 119–141. https://doi.org/10.1016/s0163-7827(98)00006-x

Trivellini, A., Ferrante, A., Vernieri, P. and Serra, G. (2011). Effects of abscisic acid on ethylene biosynthesis and perception in Hibiscus rosa-sinensis L. flower development. Journal of Experimental Botany, 62(15), 5437–5452. https://doi.org/10.1093/jxb/err218

van Doorn, W. G. (1996). Water relations of cut flowers. In J. Janick (Ed.), Horticultural Reviews (Vol. 18, pp. 1–85). John Wiley and Sons. https://doi.org/10.1002/9780470650608.ch1

van Doorn, W. G. (2001). Categories of petal senescence and abscission: A re-evaluation. Annals of Botany, 87(4), 447–456.

van Doorn, W. G. (2004). Is petal senescence due to sugar starvation? Plant Physiology, 134(1), 35–42. https://doi.org/10.1104/pp.103.031427

van Doorn, W. G. and Woltering, E. J. (2008). Physiology and molecular biology of petal senescence. Journal of Experimental Botany, 59(3), 453–480. https://doi.org/10.1093/jxb/erm356

Wingler, A., Purdy, S. J., MacLean, J. A. and Pourtau, N. (2006). The role of sugars in integrating environmental signals during the regulation of leaf senescence. Journal of Experimental Botany, 57(2), 391–399. https://doi.org/10.1093/jxb/eri279

Woo, H. R., Kim, H. J., Lim, P. O. and Nam, H. G. (2019). Leaf Senescence: Systems and Dynamics Aspects. Annual review of plant biology, 70, 347–376. https://doi.org/10.1146/annurev-arplant-050718-095859

Xu, W., Dubos, C. and Lepiniec, L. (2015). Transcriptional control of flavonoid biosynthesis by MYB–bHLH–WDR complexes. Trends in Plant Science, 20(3), 176–185. https://doi.org/10.1016/j.tplants.2014.12.001

Yang, Shang Fa and Neal E. Hoffman. 1984. “Ethylene Biosynthesis and Its Regulation in Higher Plants.” Annual Review of Plant Biology 35: 155–189. https://doi.org/10.1146/annurev.pp.35.060184.001103.

Zhao, Y. W., Wang, C. K., Huang, X. Y. and Hu, D. G. (2021). Anthocyanin stability and degradation in plants. Plant signaling and behavior, 16(12), 1987767. https://doi.org/10.1080/15592324.2021.1987767

Published

2026-07-27

How to Cite

kumari, S., Suman Bhatia, & Swati. (2026). Physiology and Biochemistry of Flower Senescence: Mechanisms, Regulation and Implications for Postharvest Longevity. Journal of Eco-Friendly Agriculture, 21(2), 173-184. https://doi.org/10.48165/jefa.2026.21.2.1