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Research Articles

Vol. 13 No. sp5 (2026): Recent Advances in Agriculture

Comparing dormancy-breaking treatments for enhancing seed germination in Tephrosia purpurea (L.) Pers. under laboratory conditions

DOI
https://doi.org/10.14719/pst.16489
Submitted
2 July 2026
Published
18-09-2026

Abstract

Tephrosia purpurea (L.) Pers. (wild indigo) is a leguminous plant valued for its medicinal and soil-enriching properties. However, its propagation is limited by hard seed coat induced dormancy, which restricts water absorption and delays germination. To overcome this constraint, various physical, mechanical and chemical dormancy-breaking treatments are used. The present study was conducted to assess the efficiency of different dormancy-breaking treatments on germination of T. purpurea. The study was conducted during 2021 at Dr. M.S. Swaminathan Agricultural College and Research Institute, Tamil Nadu Agricultural University, Thanjavur, Tamil Nadu, India. Tephrosia purpurea seeds were exposed to various dormancy-breaking treatments, namely heat, mechanical, chemical and growth regulator applications. The data were subjected to statistical analysis. The study revealed that dormancy in T. purpurea is mainly physical due to a hard, impermeable seed coat. Among all treatments, hot water treatment for 6 min was the most effective, resulting in 65 % germination compared with 4 % in the untreated control. Acid scarification (H₂SO₄ for 5 min; 31 % germination) and mechanical scarification (sandpaper for 15 min; 26 % germination) also improved germination but were less effective. Excessive heat or acid exposure damaged embryos, ultimately inhibiting germination. Potassium nitrate (KNO₃) and gibberellic acid (GA₃) treatments showed minor effects on germination, indicating that dormancy in T. purpurea is predominantly physical rather than physiological. In conclusion, hot water treatment for 6 min is recommended as a simple, safe and eco-friendly dormancy-breaking method for T. purpurea under laboratory conditions.

References

  1. 1. Dubey L, Dubey M, Jain P. Role of green manuring in organic farming. Plant Arch. 2015;15(1):23–26.
  2. 2. Meena BL, Fagodiya RK, Prajapat K, Dotaniya ML, Kaledhonkar MJ, Sharma PC, et al. Legume green manuring: an option for soil sustainability. In: Meena R, Das A, Yadav G, Lal R, editors. Legumes for Soil Health and Sustainable Management. Singapore: Springer; 2018. p. 387–408. https://doi.org/10.1007/978-981-13-0253-4_12
  3. 3. Saeed AA, Mabrouk AS, Kasem WT, Al-Gifri AN. Macro and micro morphological properties of genus Tephrosia Pers. (Fabaceae) and their taxonomical significance at Aden Governorate, Yemen. J Med Plants Stud. 2019;7(5):39–44.
  4. 4. Menaga M, Raj TLS, Jebarubi E. Assessment of genetic diversity of selected Tephrosia species from Tirunelveli district of Tamil Nadu. Int J Emerg Technol Innov Res. 2019;6(6):913–17.
  5. 5. Meena KC, Singh N, Bhandoria MS, Bansal P, Yadav SS. Floristic diversity of the family Fabaceae (Leguminosae) in community forests of South Haryana, India. Legume Res. 2025;48(10):1712–20. https://doi.org/10.18805/LR-5515
  6. 6. Nga PT, Linh NTA, Ngot PV, Thanh DTN. Morphoanatomical characteristics and antimicrobial activity of crude extract of Tephrosia villosa (L.) Pers. growing on sandy soil of Phan Thiet City, Binh Thuan Province, Vietnam. World J Adv Res Rev. 2020;8(3):192–203. https://doi.org/10.30574/wjarr.2020.8.3.0471
  7. 7. Wen Z, Lu X, Wen J, Wang Z, Chai M. Physical seed dormancy in legumes: molecular advances and perspectives. Plants. 2024;13(11):1473–87. https://doi.org/10.3390/plants13111473
  8. 8. Arulselvi S, Umadevi M, Tamilselvi C, Anuratha A, Selvamurugan M, Karunakaran V, et al. Deciphering the mystic potentials of wild indigo (Tephrosia spp.) in agro arid ecosystems. Int J Res Agron. 2024;7(12):217–22. https://doi.org/10.33545/2618060X.2024.v7.i12c.2134
  9. 9. Morais LF, Almeida JCC, Deminicis BB, Padua FT, Morenz MJF, Abreu JBR, et al. Methods for breaking dormancy in seeds of tropical forage legumes. Am J Plant Sci. 2014;5(13):1831–35. https://doi.org/10.4236/ajps.2014.513196
  10. 10. Msanga HP, Maghembe JA. Effect of hot water and chemical treatments on the germination of Albizia schimperiana seed. For Ecol Manag. 1986;17(2-3):137–46. https://doi.org/10.1016/0378-1127(86)90106-4
  11. 11. Talei D, Valdiani A, Abdullah MP, Hassan SA. A rapid and effective method for dormancy breakage and germination of King of Bitters (Andrographis paniculata Nees.) seeds. Maydica. 2012;57:98–105.
  12. 12. Yazdanpanah E, Armand N, Mohsenzadeh S, Moradshahi A, Ahmadi K, Jahantab E. Seed dormancy breaking of Ziziphus nummularia. World Appl Sci J. 2013;28(11):1831–33.
  13. 13. Mohamed MBN, Shukla AK, Mehta RS, Keerthika A, Gupta DK. Effect of presowing treatments on seed and seedling quality attributes of an endemic agroforestry tree Acacia nilotica subsp. cupressiformis (J.L. Stewart) Ali and Faruqi. Legume Res. 2024;47(6):1007–10.
  14. 14. Rajendraprasad S, Masilamani P, Balakrishnan K. Effect of pre-sowing seed treatments on dormancy of sunn hemp (Crotalaria juncea). Seed Res. 2017;45(2):136–40.
  15. 15. Iralu V, Upadhaya K. Seed dormancy, germination and seedling characteristics of Elaeocarpus prunifolius Wall. ex Müll. Berol.: a threatened tree species of north-eastern India. N Z J For Sci. 2018;48(16):1–10. https://doi.org/10.1186/s40490-018-0121-y
  16. 16. Vennila S, Kumaran K, Mathivanan M, Kathiravan M, Manivasakan S, Krishnaveni A, et al. Effect of pre-sowing seed treatment on seed germination and seedling vigour in natural dye-yielding species Blue Gold (Indigofera tinctoria L.). J Exp Agric Int. 2025;47(2):302–9. https://doi.org/10.9734/jeai/2025/v47i23290
  17. 17. Chaves IS, Silva NCQ, Ribeiro DM. Effect of the seed coat on dormancy and germination in Stylosanthes humilis H.B.K. seeds. J Seed Sci. 2017;39(2):114–22. https://doi.org/10.1590/2317-1545v39n2167773
  18. 18. Mensah SI, Ekeke C. Effects of different pretreatments and seed coat on dormancy and germination of seeds of Senna obtusifolia (L.) H.S. Irwin and Barneby (Fabaceae). Int J Biol. 2016;8(2):77–84. https://doi.org/10.5539/ijb.v8n2p77
  19. 19. Wang YR, Hanson J. An improved method for breaking dormancy in seeds of Sesbania sesban. Exp Agric. 2008;44(2):185–95. https://doi.org/10.1017/S0014479708006327
  20. 20. Ardiarini N, Lase JA, Hidayat Y, Habeahan KB. The effect of seed scarification on the germination process and the growth of long bean (Vigna sinensis) sprout. E3S Web Conf. 2021;306:01002. https://doi.org/10.1051/e3sconf/202130601002
  21. 21. Wang S, Shi F, Shi R, Zhang Y. Seed dormancy and germination in alfalfa (Medicago falcata L.). Legume Res. 2024;47(2):234–41. https://doi.org/10.18805/LRF-758
  22. 22. Sadeghi H, Khaef N. Germination of three annual medics (Medicago roman.) as affected by seed-coat dormancy breaking techniques. Legume Res. 2012;35:112–18.
  23. 23. Babayemi OJ, Daniel IO, Bamikole MA, Ogungbesan A, Oduguwa BO. Preliminary studies on Tephrosia species: effect of seed treatments on germination. Niger J Anim Prod. 2003;30(2):209–16. https://doi.org/10.51791/njap.v30i2.1488
  24. 24. Kumar S, Sharma SB, Nongrum MM, Singh TP, Kumari N, Rozar KP. Effect of pre-sowing treatments on the germination of five legume species and their tolerance to desiccation. Indian J Ecol. 2020;47(1):102–8.
  25. 25. Moraes PJ, Ribeiro JPO, Silva MM, Dias DCFS, Cecon PR, Santos JV. Seed germination in Tephrosia egregia Sandwith (Fabaceae), a species native to the Brazilian Caatinga ecoregion with potential for recovery of degraded areas. Hoehnea. 2023;50:777–87. https://doi.org/10.1590/2236-8906ea292022
  26. 26. Kimura E, Islam MA. Seed scarification methods and their use in forage legumes. Res J Seed Sci. 2012;5(2):38–50. https://doi.org/10.3923/rjss.2012.38.50
  27. 27. Ashtari R, Heidari M, Omidi M, Zare AR. Seed germination anddormancy breaking techniques for Ducrosia anethifolia (DC.). Trakia J Sci. 2013;1:82–87.
  28. 28. Baskin CC, Baskin JM. Seeds: ecology, biogeography, and evolution of dormancy and germination. 2nd ed. Academic Press; 2014.
  29. 29. International Seed Testing Association. ISTA handbook on seedling evaluation. 3rd ed. International Seed Testing Association; 2003.
  30. 30. Asl MB, Sharivivash R, Rahbari A. Effect of different treatments on seed germination of honey locust (Gleditschia triacanthos). Mod Appl Sci. 2011;5(1):200–4. https://doi.org/10.5539/mas.v5n1p200
  31. 31. Esechie HA. Interaction of salinity and temperature on the germination of sorghum. J Agron Crop Sci. 1994;172:194–99. https://doi.org/10.1111/j.1439-037X.1994.tb00166.x
  32. 32. Ellis RH, Roberts EH. Improved equations for the prediction of seed longevity. Ann Bot. 1980;45:13–30. https://doi.org/10.1093/oxfordjournals.aob.a085797
  33. 33. Abdul-Baki AA, Anderson JD. Physiological and biochemical deterioration of seeds. In: Kozlowski TT, editor. Seed biology. Vol 2. New York: Academic Press; 1973. p. 283–315. https://doi.org/10.1016/B978-0-12-424303-3.50010-5
  34. 34. Duncan DB. Multiple range and multiple F tests. Biometrics. 1955;11:1–42. https://doi.org/10.2307/3001478
  35. 35. Bewley JD, Bradford K, Hilhorst H, Nonogaki H. Seeds: physiology of development, germination and dormancy. 3rd ed. Springer; 2013. https://doi.org/10.1007/978-1-4614-4693-4
  36. 36. Blomqvist EL, Orlikowska EH, Paikert H, Eckstein RL. The effects of dry heat and steam on germination of dry and imbibed seeds of the invasive garden lupine (Lupinus polyphyllus Lindl.). Invasive Plant Sci Manag. 2024;17:95–103. https://doi.org/10.1017/inp.2024.14
  37. 37. Copeland LO, McDonald MB. Principles of seed science and technology. 4th ed. New York: Springer; 2001. https://doi.org/10.1007/978-1-4615-1619-4
  38. 38. Nagar RP, Meena SS. Effect of physical and chemical scarification and ageing on hardseededness in Clitoria ternatea. Range Manag Agrofor. 2021;36(1):79–83.
  39. 39. Msaakpa TS, Obasi MO, Kortse PA. Dormancy breaking and germination of castor (Ricinus communis L.) seed. J Agric Biol Sci. 2013;8(5):391–8.
  40. 40. Hilhorst HWM. Definitions and hypotheses of seed dormancy. In: Bradford K, Nonogaki H, editors. Seed development, dormancy and germination. Annual Plant Reviews. Vol 27. Oxford: Blackwell Publishing Ltd; 2007. p. 50–71. https://doi.org/10.1002/9780470988848.ch3
  41. 41. Pipinis E, Milios E, Georgiou M, Smiris P. Effects of gibberellic acid and cold stratification on seed germination of two Sorbus species. For Ideas. 2015;21(1):107–14.
  42. 42. Kumar M, Sarveda S, Kumar R, Kumar A. Pre-sowing treatments on seeds of forest tree species to overcome the germination problems. Asian J Environ Ecol. 2024;23(5):1–18. https://doi.org/10.9734/ajee/2024/v23i5543

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