IJH_2025v15n5

International Journal of Horticulture, 2025, Vol.15, No.5, 242-256 http://hortherbpublisher.com/index.php/ijh 254 Jahed K.R., Saini A.K., and Sherif S.M., 2023, Coping with the cold: unveiling cryoprotectants, molecular signaling pathways, and strategies for cold stress resilience, Front Plant Sci, 14: 1246093. https://doi.org/10.3389/fpls.2023.1246093 Jisha K.C., Vijayakumari K., and Puthur J.T., 2013, Seed priming for abiotic stress tolerance: an overview, Acta Physiol Plant, 35: 1381-1396. https://doi.org/10.1007/s11738-012-1186-5 Johnson R., and Puthur J.T., 2021, Seed priming as a cost effective technique for developing plants with cross tolerance to salinity stress, Plant Physiol Biochem, 162: 247-257. https://doi.org/10.1016/j.plaphy.2021.02.038 Joshi N., Jain A., and Arya K., 2013, Alleviation of salt stress in Cucumis sativus L. through seed priming with calcium chloride, Indian J Appl Res, 3(7): 22-25. https://doi.org/10.15373/2249555X/JULY2013/7 Karalija E., Lošić A., Demir A., and Šamec D., 2024, Effects of seed priming on mitigating the negative effects of increased salinity in two varieties of sweet pepper (Capsicum annuum L.), Soil Syst, 8: 35. https://doi.org/10.3390/soilsystems8020035 Khan H.A., Pervez M.A., Ayub C.M., Ziaf K., Balal R.M., Shahid M.A., and Akhtar N., 2009, Hormonal priming alleviates salt stress in hot pepper (Capsicum annuum L.), Soil Environ, 28: 130-135. Khan M.N., Fu C., Li J., Tao Y., Li Y., Hu J., Chen L., Khan Z., Wu H., and Li Z., 2023, Seed nanopriming: how do nanomaterials improve seed tolerance to salinity and drought?, Chemosphere, 310: 136911. https://doi.org/10.1016/j.chemosphere.2022.136911 Korkmaz A., Karaca A., Kocaçınar F., and Cuci Y., 2017, The effects of seed treatment with melatonin on germination and emergence performance of pepper seeds under chilling stress, J Agric Sci (Belihuloya), 23: 167-176. Kurniawan A., Noviandi W.D., Maulidah N.I., Mullatif I.A., Rahmandhias D.T., Karim M.F., and Shyu D.J.H., 2025, Mitigating drought stress effects in tomato through seed priming and foliar application of salicylic acid: impacts on germination and plant growth, J Ecol Eng, 26: 369-383. https://doi.org/10.12911/22998993/178026 Liu X., Quan W., and Bartels D., 2022, Stress memory responses and seed priming correlate with drought tolerance in plants: an overview, Planta, 255: 45. https://doi.org/10.1007/s00425-021-03783-z Machado R.M.A., and Serralheiro R.P., 2017, Soil salinity: effect on vegetable crop growth. Management practices to prevent and mitigate soil salinization, Horticulturae, 3: 30. https://doi.org/10.3390/horticulturae3020030 Mahmood ur Rehman M., Liu J., Nijabat A., Alsudays I.M., Saleh M.A., Alamer K.H., Attia H., Ziaf K., Zaman Q.uz, and Amjad M., 2024, Seed priming with potassium nitrate alleviates the high temperature stress by modulating growth and antioxidant potential in carrot seeds and seedlings, BMC Plant Biol, 24: 606. https://doi.org/10.1186/s12870-024-01234-5 Mahmoudi H., Massoud R.B., Baatour O., Tarchoune I., Salah I.B., Nasri N., Abidi W., Kaddour R., Hannoufa A., and Lachaâl M., 2012, Influence of different seed priming methods for improving salt stress tolerance in lettuce plants, J Plant Nutr, 35: 1910-1922. https://doi.org/10.1080/01904167.2012.693808 Mombeini M., Alamzadeh Ansari N., Abdossi V., and Naseri A., 2021, Reducing destructive effects of drought stress on cucumber through seed priming with silicic acid, pyridoxine, and ascorbic acid along with foliar spraying with silicic acid, Agriculturae Conspectus Scientificus, 86: 35-49. https://hrcak.srce.hr/259583 Moustafa R.A.A., Mahdy A.M., Elsharkawy G.A.E., and Attia M.G., 2022, Enhancement of cucumber growth by nanofertilizers seed priming under salinity conditions, Alexandria J Agric Sci, 67: 227-239. https://doi.org/10.21608/alexjas.2022.203736 Nascimento W.M., Huber D.J., and Cantliffe D.J., 2013, Carrot seed germination and ethylene production at high temperature in response to seed osmopriming, Hortic Bras, 31: 554-558. https://doi.org/10.1590/S0102-05362013000400017 Nowicki M., Nowakowska M., Nowak K., Szczechura W., and Kaminski P., 2025, Seed priming and abiotic stress tolerance in carrot: unraveling the mechanisms of improved germination, PLoS One, 20: e0318753. https://doi.org/10.1371/journal.pone.0318753 Pandey A.K., Ghosh A., Rai K., Fatima A., Agrawal M., and Agrawal S.B., 2019, Abiotic stress in plants: a general outline, in: Approaches for Enhancing Abiotic Stress Tolerance in Plants, CRC Press, pp. 1-46. Papadopoulou A., Matsi T., Kamou N., Avdouli D., Mellidou I., and Karamanoli K., 2022, Decoding the potential of a new Pseudomonas putida strain for inducing drought tolerance of tomato (Solanum lycopersicum) plants through seed biopriming, J Plant Physiol, 271: 153658. https://doi.org/10.1016/j.jplph.2022.153658 Paparella S., Araújo S.S., Rossi G., Wijayasinghe M., Carbonera D., and Balestrazzi A., 2015, Seed priming: state of the art and new perspectives, Plant Cell Rep, 34: 1281-1293. https://doi.org/10.1007/s00299-015-1784-y Parera C.A., Qiao P., and Cantliffe D.J., 1993, Enhanced celery germination at stress temperature via solid matrix priming, HortScience, 28: 20-22. https://doi.org/10.21273/HORTSCI.28.1.20

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