Evaluation of seed dormancy-breaking techniques for enhancing germination potential, seedling growth, and vigour of Carissa carandas L.
DOI:
https://doi.org/10.14719/pst.6048Keywords:
Germination capacity, pre-treatments, seed dormancy, seedling growth, seedling vigourAbstract
Carissa carandas L. is a versatile evergreen shrub of the Apocynaceae family and its fruit is rich in vitamins and antioxidants. It is commonly propagated by seeds, which are characterized by low germination rates due to the presence of a hard seed coat that causes physical dormancy and limits water absorption and gas exchange. In this study, the effects of different dormancy-breaking treatments viz., chemical treatment with potassium nitrate and thiourea at two concentrations (1% and 2%), hormonal therapy with gibberellic acid (GA3) at two concentrations (500 and 1000 ppm) and physical treatments (hot water and simple water immersion) were investigated on germination and seedling growth using a Randomized Block Design (RBD) with three replications and the statistical significance of each treatment was tested at the five percent probability level (p ? 0.05). Key germination indices, seedling growth parameters, and seedling vigour were observed. Among all treatments, 2% KNO3 was most effective in breaking seed dormancy that achieved significantly higher (86.33%) germination with accelerated completion of germination in 18 days and the highest (4.80) mean daily germination (MDG). Thiourea 2% attained a germination percentage of 82.91% and MDG of 4.36 while GA3 treated seeds had a lower germination percentage and MDG than KNO3 and thiourea treatments. The significantly highest seedling length vigour index (LVI) of 1085.1 and weight vigour index (WVI) of 12.67 were also obtained in 2% KNO3 treated seeds which was followed by 2% thiourea with LVI of 1003.6 and WVI 10.12 . Both LVI and WVI were significantly lower in GA3 treatments compared to KNO3 and thiourea treatments. The significantly lowest germination percentage (61.19%), MDG (2.78), LVI (575.8), and WVI (3.67) were recorded in the control. This study offers valuable insights into the efficient techniques for seed dormancy breaking and optimizing seed propagation techniques for C. carandas L.
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References
Jadhav SD, Nangare D, Kakade VS, Baramati P. Karonda: Under-exploited fruit crop for dry land condition. Just Agriculture: Multidisciplinary E-Newsletter. 2022;2.
Bilala A, Ayuba MA, Mushtaqa A, Merzaiab AB. A brief study of phytochemical profile and pharmacological applications of Carissa carandas (L.). Int J Chem Biochem. 2015;8:92-96.
Tomer V, Kumar A. Karonda (Carissa carandas L.): a miracle fruit with multifaceted potential. JAgric Food Res. 2024;101417. https://doi.org/10.1016/j.jafr.2024.101417.
Tesfaye T, Ravichadran Y. Traditional uses, pharmacological action and phytochemical analysis of Carissa carandas Linn. A review. Nat Prod Chem Res. 2018;6(5):1-20. https://doi.org/10.4172/2329-6836.1000334
Wani R, Prasad V, Hakeem S, Sheema S, Angchuk S, Dixit A. Shelf life of Karonda jams (Carissa carandas L.) under ambient temperature. Afr J Agric Res. 2013;8(21):2447-49. https://doi.org/10.5897/AJAR2013.6854.
Rafique N, Mamoona T, Ashraf N, Hussain S, Ahmed F, Ali Shah T, Salamatullah AM, Mekonnen AB, Bourhia M. Exploring the nutritional and sensory potential of karonda fruit: Physicochemical properties, jam production, and quality evaluation. Food Sci Nutr. 2023;11(11):6931-44. https://doi.org/10.1002/fsn3.3619.
Kamran M, Wang D, Xie K, Lu Y, Shi C, Sabagh AE, Gu W, Xu P. Pre-sowing seed treatment with kinetin and calcium mitigates salt induced inhibition of seed germination and seedling growth of choysum (Brassica rapa var. parachinensis). Ecotoxicol Environ Safety. 2021;227:112921. https://doi.org/10.1016/j.ecoenv.2021.112921
Yeddula N, Topno S, Srivastava V, Bahadur V, Prasad V, Singh S. Effect of chemical priming on seed germination and seedling growth in papaya (Carica papaya L.). The Pharma Innov J. 2022;11(5):2542-46.
Hore J, Sen S. Role of presowing seed treatment on germination, seedling growth and longevity of ber (Zizyphus mauritiana Lam.) seeds. Indian J Agric Res. 1994;28:285-89.
Mahadi S, Nulit R, Mohtar M, Ibrahim M, Ab Ghani N. Synergistic effect of KCl, thiourea, GA3 and SA on the germination and early seedling growth enhancement of drought-stressed Malaysian indica rice cv. MR220. Biocatal Agric Biotechnol. 2020;29:101779. https://doi.org/10.1016/j.bcab.2020.101779
Finch?Savage WE, Leubner?Metzger G. Seed dormancy and the control of germination. New Phytol. 2006;171(3):501-23. https://doi.org/10.1111/j.1469-8137.2006.01787.x
Getlawi A, Shahba M, Hughes H. Glaucium species seed germination at different salinity levels as influenced by growth regulators. Hortic Int J. 2019;3:77-85. https://doi.org/10.15406/hij.2019.03.00115
Çetinba? M, Koyuncu F. Improving germination of Prunus avium L. seeds by gibberellic acid, potassium nitrate and thiourea. Hortic Sci. 2006;33(3):119-23. https://doi.org/10.17221/3750-HORTSCI
Dey AN, Bhowmick N, Chakraborty A, Dey K, Ghosh A. Influence of different pre-sowing treatments on germination potential of Bakul (Mimusops elengi L.). Pharma Innov J. 2021;10:236-38. https://doi.org/10.22271/tpi.2021.v10.i4d.5930
Palepad K, Bharad S, Bansode G. Effect of seed treatments on germination, seedling vigour and growth rate of custard apple (Annona squamosa). J Pharmacogn Phytochem. 2017;6(6):20-23.
Nimbalkar S, Jadhav Y, Adat S, Savvashe A. Effect of different seed treatments on germination and growth of karonda (Carissa congesta W.). Green Farming. 2012;3(3):340-42.
Datt G, Chauhan JS, Ballabha R. Influence of pre-sowing treatments on seed germination of various accessions of Timroo (Zanthoxylum armatum DC.) in the Garhwal Himalaya. J Appl Res Med Aromat Plants. 2017;7:89-94. https://doi.org/10.1016/j.jarmap.2017.06.004
Amri B, Khamassi K, Ali MB, da Silva JAT, Kaab LBB. Effects of gibberellic acid on the process of organic reserve mobilization in barley grains germinated in the presence of cadmium and molybdenum. S Afr J Bot. 2016;106:35-40. https://doi.org/10.1016/j.sajb.2016.05.007
Waman AA, Bohra P, Norman A. Chemical pre-treatments improve seed germination and seedling growth in Semecarpus kurzii: an ethnomedicinally important plant. J For Res. 2018;29:1283-89. https://doi.org/10.1007/s11676-017-0562-9
Krishan R, Sharma RK, Sharma SS. Assessment of seed biology of the Himalayan medicinal herb Phytolacca acinosa Roxb., the Indian pokeweed, from the perspective of longevity, conservation and propagation. The Nucleus. 2022;65(3):331-39. https://doi.org/10.1007/s11676-017-0562-9
Rashid S, Rashid K, Ganie AH, Nawchoo IA, Khuroo AA. Seed ecology enlightens restoration of endemic species: A case study of Actaea kashmiriana from the Himalaya. Ecol Eng. 2023;187:106880. https://doi.org/10.1016/j.ecoleng.2022.106880
Singh S, Bhuker A, Kumar S, Kumar A, Dhaka AK. Effects of dormancy-breaking treatments on seed quality parameters in medicinal herb tulsi (Ocimum tenuiflorum L.). Seed Res. 2023;51(1):43-49.
Kadam A, Singh D, Kade R. Effect of plant growth regulators and potassium nitrate on growth of seedling of Kagzi lime. Asian J Hortic. 2010;5:431-34.
Lay P, Basvaraju G, Pashte V, Gowri M. Studies on effect of giberellic Acid (GA3) and potassium nitrate (KNO3) on breaking of seed dormancy of papaya (Carica papaya L.) cv. Surya The Ecoscan. 2015;9(1 and 2):111-15.
Mousavi L, Ishak WRW, Mousavi M. Evaluation of physicochemical methods for dormancy breakage and germination of Datura stramonium seeds. J Chem Health Risks. 2019;9(3).https://doi.org/10.22034/jchr.2019.668186.
Sohindji FS, Sogbohossou DE, Zohoungbogbo HP, Houdegbe CA, Achigan-Dako EG. Understanding molecular mechanisms of seed dormancy for improved germination in traditional leafy vegetables: An overview. Agronomy. 2020;10(1):57. https://doi.org/10.3390/agronomy10010057.
Gashi B, Abdullai K, Mata V, Kongjika E. Effect of gibberellic acid and potassium nitrate on seed germination of the resurrection plants Ramonda serbica and Ramonda nathaliae. Afr J Biotechnol. 2012;11(20):4537-42.
Patel R, Ahlawat T, Singh A, Momin S, Gavri C. Effect of pre-sowing treatments on stone germination and shoot growth of mango (Mangifera indica L.) seedlings. Int J Agric Sci. 2016;8(52):2437-40.
Bhavya N, Naik N, Kantharaju V, Nataraj K. Studies on effect of different pre-sowing treatments on germination of karonda (Carissa carandas L.) seeds. J Pharmacogn Phytochem. 2017;6(6):352-54.
Scott SJ, Jones R, Williams W. Review of data analysis methods for seed germination 1. Crop Sci. 1984;24(6):1192-99.https://doi.org/10.2135/cropsci1984.0011183X002400060043x.
Burnett SE, Pennisi SV, Thomas PA, van Iersel MW. Controlled drought affects morphology and anatomy of Salvia splendens. J Am Soc Hortic Sci. 2005;130(5):775-81.https://doi.org/10.21273/JASHS.130.5.775.
MacGregor DR, Kendall SL, Florance H, Fedi F, Moore K, Paszkiewicz K, Smirnoff N, Penfield S. Seed production temperature regulation of primary dormancy occurs through control of seed coat phenylpropanoid metabolism. New Phytol. 2015;205(2):642-52.https://doi.org/10.1111/nph.13090.
Priyanka P, Jafar M, Ram M, Nitu G, Suaib L, Puja K, Birendra K.. Effect of potassium chloride-induced stress on germination potential of Artemisia annua L. varieties. J Appl Res Med Aromat Plants. 2018;9:110-16.https://doi.org/10.1016/j.jarmap.2018.03.005.
Ratner B. The correlation coefficient: Its values range between+ 1/? 1, or do they?. Journal of Targeting, Measurement and Analysis for Marketing. 2009;17(2):139-42. https://doi.org/10.1057/jt.2009.5.
Nasri F, Khosheh Saba M, Ghaderi A, Mozafari AA, Javadi T. Improving germination and dormancy breaking in Alstromeria ligtu hybrid seeds. Trakia J Sci. 2014;12(1):38-46.
Matakiadis T, Alboresi A, Jikumaru Y, Tatematsu K, Pichon O, Renou JP, Kamiya Y, Nambara E, Truong HN. The Arabidopsis abscisic acid catabolic gene CYP707A2 plays a key role in nitrate control of seed dormancy. Plant Physiol. 2009;149(2):949-60.https://doi.org/10.1104/pp.108.126938.
Chahtane H, Kim W, Lopez-Molina L. Primary seed dormancy: a temporally multilayered riddle waiting to be unlocked. J Exp Bot. 2017;68(4):857-69.https://doi.org/10.1093/jxb/erw377.
Forghani A, Almodares A, Ehsanpour A. The role of gibberellic acid and paclobutrazol on oxidative stress responses induced by in vitro salt stress in sweet sorghum. Russ J Plant Physiol. 2020;67:555-63.https://doi.org/10.1134/S1021443720030073.
Kwon HJ, Shin SL, Kim Y-R, Kim S-Y. Effects of temperature, gibberellic acid and KNO3 treatments on seed germination of the wild plant Maesa japonica. Seed Sci Technol. 2020;48(1):65-72.https://doi.org/10.15258/sst.2020.48.1.09.
Nur M, Baskin CC, Lu JJ, Tan DY, Baskin JM. A new type of non-deep physiological dormancy: evidence from three annual Asteraceae species in the cold deserts of Central Asia. Seed Sci Res. 2014;24(4):301-14.https://doi.org/10.1017/S0960258514000300.
Soltani E, Baskin C, Baskin J. A graphical method for identifying the six types of non?deep physiological dormancy in seeds. Plant Biol. 2017;19(5):673-82.https://doi.org/10.1111/plb.12590.
Hu D, Baskin JM, Baskin CC, Yang X, Huang Z. Ecological role of physical dormancy in seeds of Oxytropis racemosa in a semiarid sandland with unpredictable rainfall. J Plant Ecol. 2018;11(4):542-52.https://doi.org/10.1093/jpe/rtx063.
Piskurewicz U, Jikumaru Y, Kinoshita N, Nambara E, Kamiya Y, Lopez-Molina L. The gibberellic acid signaling repressor RGL2 inhibits Arabidopsis seed germination by stimulating abscisic acid synthesis and ABI5 activity. Plant Cell. 2008;20(10):2729-45.https://doi.org/10.1105/tpc.108.061515.
Si Q, Ma Y, Zang D. The causes of dormancy and the changes of endogenous hormone content in Cephalotaxus sinensis seeds. Agric Sci. 2016;7(12):834. https://doi.org/10.4236/as.2016.712076
Gurung N, Swamy G, Sarkar S, Ubale N. Effect of chemicals and growth regulators on germination, vigour and growth of passion fruit (Passiflora edulis Sims.). The Bioscan. 2014;9(1):155-58.
Lara TS, Lira JMS, Rodrigues AC, Rakocevi M, Alvarenga AA. Potassium nitrate priming affects the activity of nitrate reductase and antioxidant enzymes in tomato germination. J Agric Sci. 2014;6(2):72.https://doi.org/10.5539/jas.v6n2p72.
Mirabi E, Hasanabadi M. Effect of seed priming on some characteristic of seedling and seed vigour of tomato (Lycopersicon esculentum). J Adv Lab Res Biol. 2012;3(3):237-40.
Haider FU, Virk AL, Rehmani MIA, Skalicky M, Ata-ul-Karim ST, Ahmad N, Soufan W, Brestic M, Sabagh AE, Liqun C. Integrated application of thiourea and biochar improves maize growth, antioxidant activity and reduces cadmium bioavailability in cadmium-contaminated soil. Front Plant Sci. 2022;12:809322.https://doi.org/10.3389/fpls.2021.809322.
Perveen A, Wahid A, Mahmood S, Hussain I, Rasheed R. Possible mechanism of medium-supplemented thiourea in improving growth, gas exchange, and photosynthetic pigments in cadmium-stressed maize (Zea mays). Rev Bras Bot. 2015;38:71-79.https://doi.org/10.1007/s40415-014-0124-8.
Liopa-Tsakalidi A, Zakynthinos G, Varzakas T, Xynias IN. Effect of NaCl and GA3 on seed germination and seedling growth of eleven medicinal and aromatic crops. J Med Plants Res. 2011;5(17):4065-73.
Zhu XF, Jiang T, Wang ZW, Lei GJ, Shi YZ, Li GX, Zheng SJ. Gibberellic acid alleviates cadmium toxicity by reducing nitric oxide accumulation and expression of IRT1 in Arabidopsis thaliana. J Hazard Mater. 2012;239:302-07.https://doi.org/10.1016/j.jhazmat.2012.08.077.
Lay P, Basvaraju G, Sarika G, Amrutha N. Effect of seed treatments to enhance seed quality of papaya (Carica papaya L.) cv. surya. Greener J Biomed Health Sci. 2013;2(3):221-25.
Patil M, Desai N, Pawar U, Gaikwad D. Effect of plant growth regulators on seed germination and seedling growth of Colubrina asiatica L. Stud Rosenthaliana J Study Res. 2021;12(8):41-46. https://www.researchgate.net/publication/349589019.
Dilip W, Singh D, Moharana D, Rout S, Patra S. Effect of gibberellic acid (GA) different concentrations at different time intervals on seed germination and seedling growth of Rangpur Lime. J Agroeco Nat Resour Manag. 2017;4:157-65.https://www.researchgate.net/publication/316968909
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