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Research Articles

Vol. 12 No. 2 (2025)

Fruiting phenology, seed and seedling morphology of Bentinckia condapanna Berry ex Roxb., an altitude specific endemic palm species of the southern Western Ghats

DOI
https://doi.org/10.14719/pst.8591
Submitted
31 March 2025
Published
26-05-2025 — Updated on 10-06-2025
Versions

Abstract

Bentinckia condapanna is an endemic palm of the southern Western Ghats, which holds crucial ecological impact since it is a food source for many endemic frugivorous fauna. Patchy populations confined amongst cliffy niches is a cozy sight concerning consistent demographic loss. Seeds are the sole reproductive propagules of the vulnerable species; nevertheless, few data are available regarding fruiting phenology and seed biology. The present study monitored the fruiting phenology, seed and seedling morphology of B. condapanna, which is a pre-requisite for the conservation strategies. The fruit maturation in the palm is a supra-annual process. It exhibited year-round flowering and fruiting; however, mast spadix exposure was found during the dry season and the peak fruit maturation overlapped the period between May to August. The sinuate ridged seed lodges a top-shaped embryo in the cavity beneath the operculum, proximal to the endocarpic stalk-like ridge above the hilum. The moisture content of the mature seed indicates its recalcitrant nature. The seed germination was found to be adjacent and displayed a slow erratic pattern with low germination and a prolonged dormancy period. The cotyledonary petiole emerges from the seed as a button-like structure, which later subtends the primary root and the plumular axis. Eophyll emerges from the plumular axis subsequently after the emission of a single ligule and two cataphylls. The suspected recalcitrance with dormancy nature might be the contributing factor for its low regeneration in the habitat.

References

  1. 1. Nayar MP. Conservation of rare and endangered species of Indian flora: strategies for botanical gardens. Conservation and Economic Evaluation of Biodiversity. 1997;1:47-57.
  2. 2. Abhilash ES, Sathian B. Status of the rare palm Bentinckia condapanna Berry in two habitats of Goodrical Reserve Forests; Western Ghats of India. Asia Pacific Journal of Environment Ecology and Sustainable Development. 2013;1(1):6-9. https://doi.org/10.3126/apjeesd.v1i1.9503
  3. 3. Kulkarni AR, Mulani RM. Indigenous palms of India. Current science. 2004;86(12):1598-603.
  4. 4. Gnanasekar S, Vidhya C, Sivarathinavel RA, Banu SS. Status and distribution of Bentinckia condapanna Berry ex Roxb (Arecaceae), an endemic endangered palm species of the Southern Western Ghats, Tamil Nadu. Indian Forester. 2021;147(12):1176-81. https://doi.org/10.36808/if/2021/v147i12/166683
  5. 5. Nair NC. Endemism on the Western Ghats with special reference to Impatiens L. In: Karunakaran C, editor. Proceedings of the Symposium on Rare, Endangered, Endemic Plants of Western Ghats; 1991. p. 93-102.
  6. 6. Sarkar MK. Management strategies for endemic and threatened medicinal plants in India: a geoinformatic approach. Dept. of Environment, Govt. of Tamil Nadu; 2012.
  7. 7. Renuka C, Bhat KV, Basha SC. Palm resources of Kerala and their utilisation. Thrissur: KFRI; 1996.
  8. 8. Mohanan M, Henry AN. Flora of Thiruvananthapuram Kerala. Coimbatore: Botanical survey of India; 1994.
  9. 9. Ravikumar K, Ved DK. Illustrated field guide to 100 red listed medicinal plants of conservation concern in southern India. Bangalore: Foundation for Revitalisation of Local Health Traditions; 2000.
  10. 10. Kamble MY, Benjamin JF, Poulose VC. Taxonomic significance of seeds and seedling morphology in the threatened Indian endemic palm genus Bentinckia (Arecaceae). Journal of Threatened Taxa. 2024;16(10):26030-4. https://doi.org/10.11609/jott.7944.16.10.26030-26034
  11. 11. Baskin CC, Baskin JM. Seeds: ecology, biogeography and evolution of dormancy and germination. San Diego: Academic press; 2000.
  12. 12. ISTA. International Rules for Seed Testing. Switzerland: International Seed Testing Association; 2017.
  13. 13. Ribeiro LM, Oliveira DM, Garcia QD. Structural evaluations of zygotic embryos and seedlings of the macaw palm (Acrocomia aculeata, Arecaceae) during in vitro germination. Trees. 2012;26:851-63. https://doi.org/10.1007/s00468-011-0659-2
  14. 14. Silva RS, Ribeiro LM, Mercadante-Simões MO, Nunes YR, Lopes PS. Seed structure and germination in buriti (Mauritia flexuosa), the Swamp palm. Flora - Morphology, Distribution, Functional Ecology of Plants. 2014;209(11):674-85. https://doi.org/10.1016/j.flora.2014.08.012
  15. 15. Henderson FM. Morphology and anatomy of palm seedlings. The Botanical Review. 2006;72(4):273-329. https://doi.org/10.1663/0006-8101(2006)72[273:MAAOPS]2.0.CO;2
  16. 16. Orozco-Segovia A, Batis AI, Rojas-Aréchiga M, Mendoza A. Seed biology of palms: a review. Palms. 2003;47(2):79-94.
  17. 17. Lorenzi H, Noblick L, Kahn F, Ferreira EJ. Flora Brasilieira: Arecaceae (Palmeiras). Nova Odessa: Instituto Plantarum; 2010.
  18. 18. Corner EJ. The natural history of palms. University of California Press; 1966.
  19. 19. Steven DD, Windsor DM, Putz FE, de Leon B. Vegetative and reproductive phenologies of a palm assemblage in Panama. Biotropica. 1987;19(4):342-56.
  20. 20. Fenner M. The phenology of growth and reproduction in plants. Perspectives in Plant Ecology, Evolution and Systematics. 1998;1(1):78-91.
  21. 21. van Schaik CP, Terborgh JW, Wright SJ. The phenology of tropical forests: adaptive significance and consequences for primary consumers. Annual Review of Ecology and Systematics. 1993;24(1):353-77.
  22. 22. Wright SJ, van Schaik CP. Light and the phenology of tropical trees. The American Naturalist. 1994;143(1):192-9.
  23. 23. Newstrom LE, Frankie GW, Baker HG. A new classification for plant phenology based on flowering patterns in lowland tropical rain forest trees at La Selva, Costa Rica. Biotropica. 1994;26(2):141-59.
  24. 24. Cunningham SA. Pollen supply limits fruit initiation by a rain forest understorey palm. Journal of Ecology. 1996;84(2):185-94.
  25. 25. Reich PB, Borchert R. Water stress and tree phenology in a tropical dry forest in the lowlands of Costa Rica. Journal of Ecology. 1984;72(1):61-74. https://doi.org/10.2307/2260006
  26. 26. Rosa RK, Barbosa RI, Koptur S. How do habitat and climate variation affect phenology of the Amazonian palm, Mauritia flexuosa? Journal of Tropical Ecology. 2013;29(3):255-9.
  27. 27. McLaren KP, McDonald MA. Seasonal patterns of flowering and fruiting in a dry tropical forest in Jamaica 1. Biotropica. 2005;37(4):584-90.
  28. 28. Guilherme FA, Vasconcelos EI, Coelho CP, Ressel K, Batista NT, Souza LF. Vegetative and reproductive phenology of Butia purpurascens Glassman (Arecaceae) under the effects of leaf harvesting. Brazilian Journal of Biology. 2015;75(1):77-85.
  29. 29. Leite IR, Encarnação CR. Fenologia do coqueiro na zona costeira de Pernambuco. Pesq. agropec. bras. 2002;37(6):745-52.
  30. 30. Ruiz RR, Alencar JD. Comportamento fenológico da palmeira patauá (Oenocarpus bataua) na reserva florestal Adolpho Ducke, Manaus, Amazonas, Brasil. Acta Amazônica. 2004;34(4):553-8. https://doi.org/10.1590/S0044-59672004000400007
  31. 31. Bendix J, Homeier J, Cueva Ortiz E, Emck P, Breckle SW, Richter M, et al. Seasonality of weather and tree phenology in a tropical evergreen mountain rain forest. International Journal of Biometeorology. 2006;50:370-84.
  32. 32. Olsen OA. Endosperm developments. Plant Cell. 1998;10:485-8. https://doi.org/10.1105/tpc.10.4.485
  33. 33. Mazzottini-dos-Santos HC, Ribeiro LM, Mercadante-Simões MO, Sant’Anna-Santos BF. Ontogenesis of the pseudomonomerous fruits of Acrocomia aculeata (Arecaceae): a new approach to the development of pyrenarium fruits. Trees. 2015;29:199-214. https://doi.org/10.1007/s00468-014-1104-0
  34. 34. Rudall PJ, Abranson K, Dransfield J, Baker W. Floral anatomy in Dypsis (Arecaceae-Areceae): a case of complex synorganization and stamen reduction. Botanical Journal of the Linnean Society. 2003;143(2):115-33. https://doi.org/10.1046/j.1095-8339.2003.00207.x
  35. 35. Uhl NW. Developmental studies in Ptychosperma (Palmae). II. The staminate and pistillate flowers. American Journal of Botany. 1976;63(1):97-109. https://doi.org/10.1002/j.1537-2197.1976.tb11789.x
  36. 36. Norup MV, Dransfield J, Chase MW, Barfod AS, Fernando ES, Baker WJ. Homoplasious character combinations and generic delimitation: a case study from the Indo‐Pacific arecoid palms (Arecaceae: Areceae). American Journal of Botany. 2006;93(7):1065-80. https://doi.org/10.3732/ajb.93.7.1065
  37. 37. Dransfield J, Uhl NW, Asmussen CB, Baker WJ, Harley MM, Lewis CE. Genera palmarum-the evolution and classification of the palms. Richmond (UK): Kew Publishing; 2008. https://doi.org/10.34885/92
  38. 38. Matsunaga KK, Smith SY. Fossil palm reading: using fruits to reveal the deep roots of palm diversity. American Journal of Botany. 2021;108(3):472-94. https://doi.org/10.1002/ajb2.1616
  39. 39. Berjak P, Farrant JM, Pammenter NW. The basis of recalcitrant seed behaviour: cell biology of the homoiohydrous seed condition. In: Taylorson RB, editor. Recent advances in the development and germination of seeds. New York: NATO Scientific Affairs Division; 1989. p. 89-108. https://doi.org/10.1007/978-1-4613-0617-7_8
  40. 40. Chin HF, Krishnapillay B, Stanwood PC. Seed moisture: recalcitrant vs. orthodox seeds. In: Stanwood PC, Mcdonald MB, editors. Seed moisture. Vol. 14. Madison: Crop Society of America; 1989. p. 15-22.
  41. 41. Pammenter NW, Berjak P. A review of recalcitrant seed physiology in relation to desiccation-tolerance mechanisms. Seed Science Research. 1999;9(1):13-37. https://doi.org/10.1017/S0960258599000033
  42. 42. Barbedo CJ, Centeno DD, Ribeiro RD. Do recalcitrant seeds really exist? Hoehnea. 2013;40(4):583-93. https://doi.org/10.1590/S2236-89062013000400001
  43. 43. Broschat TK. Palm seed propagation. In: International Symposium on Ornamental Palms. Vol. 25. ISHS Acta Horticulturae 360; 1993. p. 141-8. https://doi.org/10.17660/ActaHortic.1994.360.18
  44. 44. Gatin CL. Recherches anatomiques et chimiques sur la germination des Palmiers: propositions données par la faculté. Doctoral dissertation, Masson et Cie., éditeurs. Ann. Sci. Nat., Bot. 1906;3:191-314.
  45. 45. Moore HE. Botany and classification of palms. The American Horticultural Magazine. 1960;40:17-26.
  46. 46. Tomlinson PB. Essays on the morphology of palms. Principes. 1960;5:46-53.
  47. 47. Robinson ML. Cultivated palm seed germination. Nevada. Univ Nevada Coop Ext SP-02-09; 2009. https://extension.unr.edu/publication.aspx?PubID=3243
  48. 48. Moore Jr HE, Uhl NW. Palms and the origin and evolution of monocotyledons. The Quarterly Review of Biology. 1973;48(3):414-36. https://doi.org/10.1086/407702

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