Volume 12, Issue 2 ((Autumn & Winter) 2026)                   Iranian J. Seed Res. 2026, 12(2): 111-132 | Back to browse issues page

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Molazem D. (2026). Electromagnetic Priming: A Novel Strategy to Enhance Drought Tolerance in Seeds and Seedlings of Rice (Oryza sativa cv. Hashemi). Iranian J. Seed Res.. 12(2), 111-132.
URL: http://yujs.yu.ac.ir/jisr/article-1-655-en.html
Department of Agriculture, As. C., Islamic Azad University , davar.molazem@iau.ac.ir
Abstract:   (96 Views)
Objective: This study investigated the effectiveness of electromagnetic priming in improving drought tolerance of Hashemi rice (Oryza sativa L.) during germination and early seedling growth.
Method: A factorial experiment based on a completely randomized design with three replications was conducted in 2024 at the Islamic Azad University, Astara Branch. Rice seeds were exposed to magnetic fields (0, 50, 100, and 150 mT) for 20 or 40 minutes and then subjected to four PEG-induced drought levels (0, -2, -5, and -10 bar). Germination indecies and physiological traits including proline, MDA, and chlorophyll were measured after 25 days.
Results: The mean comparison of interaction effects showed that in the absence of an electromagnetic field (0 mT), increasing drought stress from 0 to −10 bar significantly decreased germination percentage from 97% to 66.53%, germination rate from 0.43 to 0.19 seeds day¹, radicle length from 65.80 to 28.66, and plumule length from 45.33 to 17.33 mm. However, application of a 100 mT magnetic field considerably limited these reductions to approximately 24% and 49% for germination percentage and seedling length, respectively, indicating an improvement of more than 20% in maintaining germination capacity. With increasing drought stress, proline content significantly rose from 1.01 to 8.34 µmol g¹ FW, and MDA increased from 4.40 to 8.00 mmol g¹ FW, while chlorophyll a decreased from 0.64 to 0.17 and chlorophyll b from 0.75 to 0.32 mg g¹ FW. In the control (0 mT), chlorophyll a exhibited a 72% reduction, whereas at 100 mT this reduction was limited to 56.8%, reflecting approximately 15% improvement. Regression analysis revealed that the effect of magnetic field intensity on the measured traits depended strongly on the drought stress level and did not follow a consistent pattern; under severe stress (−10 bar), no significant linear relationship was detected.
Conclusions: The application of magneto-priming within the optimal range may serve as a simple, eco-friendly, and practical approach to enhance drought tolerance in rice seeds and improve early seedling establishment under unfavorable environmental conditions. In the present study, the treatment with 100 mT for 40 minutes resulted in improved seedling vigor indices for both length and weight. These findings offer new perspectives for the application of physical technologies in agricultural stress management and provide a basis for further field-based studies.

Highlights
  • Germination responses to magnetic fields are nonlinear and depend on field intensity and drought stress level.
  • Electromagnetic priming at 100 mT for 40 minutes mitigates drought stress effects by up to 20% in germination traits.
  • Magneto-priming offers a simple, eco-friendly strategy for improving rice seedling establishment under drought conditions.
Full-Text [PDF 773 kb]   (28 Downloads)    
Type of Study: Research | Subject: Seed Physiology
Received: 2025/11/4 | Revised: 2026/02/24 | Accepted: 2026/02/27 | ePublished: 2026/03/20

References
1. Abdul-baki, A. A., & Anderson, J. D. (1973). Vigor determination in soybean seed by multiplication. Crop Science, 13, 630-633. [DOI:10.2135/cropsci1973.0011183X001300060013x]
2. Afzal, I., Saleem, S., Skalicky, M., Javed, T., Bakhtavar, M. A., ul Haq, Z., Kamran, M., Shahid, M., Sohail Saddiq, M., Afzal, A., Shafqat, N., Dessoky, E. S., Gupta, A., Korczyk-Szabo, J., Brestic, M., & E. L. Sabagh, A. (2021). Magnetic field treatments improves sunflower yield by inducing physiological and biochemical modulations in seeds. Molecules, 26(7), 1-14. [DOI:10.3390/molecules26072022] [PMID] [PMCID]
3. Al-Allaf, S. J. A., & Al-Baker, R. A. H. (2022). Effectiveness of magnetic field in stimulation of biochemical and enzymes activities in seedling and callus of Nigella sativa. International Journal of Health Sciences, 6(S2), 3301-3314. [DOI:10.53730/ijhs.v6nS2.5818]
4. Alarcon, J. L. P., Cuesta, J. C., Molejon, M. R. B., Paragsa, J. D., & Ypon, N. M. Q. (2024). Investigating the influence of magnets in the growth of string bean (Phaseolus vulgaris) plant. American Journal of Life Science and Innovation, 3(1), 16-19. [DOI:10.54536/ajlsi.v3i1.2450]
5. Arnon, D. I. (1975). Copper enzymes in isolated chloroplasts; polyphenol-oxidase in Beta vulgaris. Plant Physiology, 24, 1-15. [DOI:10.1104/pp.24.1.1] [PMID] [PMCID]
6. Bandumula, N. (2018). Rice production in Asia: key to global food security. Proceedings of the National Academy of Sciences, India Section B: Biological Sciences, 88, 1323-1328. [DOI:10.1007/s40011-017-0867-7]
7. Bates, I., Waldern, R. P., & Teare, I. D. (1973). Rapid determination of free prolin for water stress studies. Plant and Soil, 39, 205-207. [DOI:10.1007/BF00018060]
8. Belcher, E. W. (1995). The effect of seed condition and length of stratification on the germination of loblolly pine seed. Tree Planters' Notes 46(4), 138-142.
9. Carbonell, M. V., Martinez, E., & Amaya, J. M. (2000). Stimulation of germination in rice (Oryza sativa L.) by a static magnetic field. Electro- and Magnetobiology, 19(1), 121-128. [DOI:10.1081/JBC-100100303]
10. Carbonell, M., Martínez, E., Florez, M., Maqueda, R., Pintor-Lopez, A., & Amaya, J. (2008). Magnetic field treatments improve germination and seedling growth in Festuca arundinacea Schreb. and Lolium perenne L. Seed Science Technology, 36, 31-37. [DOI:10.15258/sst.2008.36.1.03]
11. FAO. (2010). Rice in the global economy: Strategic research and policy issues for food security. https://www.fao.org/agrifood-economics/publications/detail/en/c/123033/
12. FAO. (2022). FAOSTAT online database. Food Agriculture Organization of the United Nations. http://faostat.fao.org/data.
13. Faraz Ali, M., Sajid Aqeel Ahmad, M., Gaafar, A.-R. Z., & Shakoor, A. (2024). Seed pre-treatment with electromagnetic field (EMF) differentially enhances germination kinetics and seedling growth of maize (Zea mays L.). Journal of King Saud University Science, 36(5), 103184. [DOI:https://doi.org/10.1016/j.jksus.2024.103184]
14. Farooq, M. A., Niazi, A. K., Akhtar, J., Saifullah, Farooq, M., Souri, Z., Karimi, N., & Rengel, Z. (2019). Acquiring control: The evolution of ROS-Induced oxidative stress and redox signaling pathways in plant stress responses. Plant Physiology and Biochemistry, 141, 353-369. [DOI:https://doi.org/10.1016/j.plaphy.2019.04.039] [PMID]
15. Florez, M., Carbonell, M. V., & Martínez, E. (2007). Exposure of maize seeds to stationary magnetic fields: effects on germination and early growth. Environmental and Experimental Botany, 59(1), 68-75. [DOI:10.1016/j.envexpbot.2005.10.006]
16. Ghane, S. G., Lokhande, V. H. & Nikam, T. D. (2012). Differential growth, physiological and biochemical responses of Niger (Guizotia abyssinica Cass.) cultivars to water-deficit (drought) stress. Acta Physiologiae Plantarum, 34(1), 215-225. [DOI:10.1007/s11738-011-0820-y]
17. Hafeez, M. B., Zahra, N., Ahmad, N., Shi, Z., Raza, A., Wang, X., & Li, J. (2023). Growth, physiological, biochemical and molecular changes in plants induced by magnetic fields: A review. Plant Biology, 25(1), 8-23. [DOI:10.1111/plb.13459] [PMID]
18. Hasan, M. M., Alharby, H. F., Uddin, M. N., Ali, M. A., Anwar, Y., Fang, X.-W., Hakeem, K. R., Alzahrani, Y., & Hajar, A. S. (2020). Magnetized water confers drought stress tolerance in Moringa biotype via modulation of growth, gas exchange, lipid peroxidation and antioxidant activity. Polish Journal of Environmental Studies, 29(2), 1625-1636. [DOI:10.15244/pjoes/110347]
19. Heath, R. L., & Packer, I. (1968). Photoperoxidation in isolated chloroplasts. I. Kinetics and stoichiometry of fatty acid peroxidation. Archives of Biochemistry and Biophysics, 125(1), 189-198. [DOI:10.1016/0003-9861(68)90654-1] [PMID]
20. Ibrahim, S., El-Liethy, M. A., Elwakeel, K. Z., Hasan, M. A. E.-G., Al Zanaty, A. M., & Kamel, M. M. (2020). Role of identified bacterial consortium in treatment of quhafa wastewater treatment plant influent in Fayuom, Egypt. Environmental Monitoring and Assessment, 192(3), 161. [DOI:10.1007/s10661-020-8105-9] [PMID]
21. International Seed Testing Association (1976). International rules for seed testing. Seed Science and Technology, 4, 51-177.
22. Janalizadeh M., Nizami, A., Khazaei, H., Faizi, H., & Guldani, M. (2016). Effect of magnetic fields on seed germination and seedling growth of sesame (Sesamum indicum L.). Iranian Journal of Seed Research, 3(1), 1-13. [In Persian] [DOI:10.29252/yujs.3.1.1]
23. Kataria, S., Baghel, L., & Guruprasad, K. N. (2017). Pre-treatment of seeds with static magnetic field improves germination and early growth characteristics under salt stress in maize and soybean. Biocatalysis and Agricultural Biotechnology, 10, 83-90. [DOI:10.1016/j.bcab.2017.02.010]
24. Katsenios, N., Bilalis, D., Efthimiadou, A., Aivalakis, G., Nikolopoulou, A.-E., Karkanis, A., & Travlos, I. (2016). Role of pulsed electromagnetic field on enzyme activity, germination, plant growth and yield of durum wheat. Biocatalysis and Agricultural Biotechnology, 6, 152-158. [DOI:10.1016/j.bcab.2016.03.010]
25. Katsenios, N., Christopoulos, M. V., Kakabouki, I., Vlachakis, D., Kavvadias, V., & Efthimiadou, A. (2021). Effect of pulsed electromagnetic field on growth, physiology and postharvest quality of kale (Brassica oleracea), wheat (Triticum durum) and spinach (Spinacia oleracea) microgreens. Agronomy, 11(7), 1364. [DOI:10.3390/agronomy11071364]
26. Kaur, S., Vian, A., Chandel, S., Singh, H. P., Batish, D. R., & Kohli, R. K. (2021). Sensitivity of plants to high frequency electromagnetic radiation: cellular mechanisms and morphological changes. Reviews in Environmental Science and Bio/Technology, 20(1), 55-74. [DOI:10.1007/s11157-020-09563-9]
27. Kumar, A., Singh, M., Singh, P. P., Singh, S. K., Singh, P. K., & Pandey, K. D. (2016). Isolation of plant growth promoting rhizobacteria and their impact on growth and curcumin content in Curcuma longa L. Biocatalysis and Agricultural Biotechnology, 8, 1-7. [DOI:10.1016/j.bcab.2016.07.002]
28. Ma, Y., Dias, M. C., & Freitas, H. (2020). Drought and salinity stress responses and microbe-induced tolerance in plants. Frontiers in Plant Science, 11, 591911. [DOI:10.3389/fpls.2020.591911] [PMID] [PMCID]
29. Maguire, J. D. (1962). Speed of germination-aid in selection and evaluation for seedling emergence and vigor. Crop Science, 2(2), 176-177. [DOI:10.2135/cropsci1962.0011183X000200020033x]
30. Mamlic, Z., Maksimovic, I., Canak, P., Mamlic, G., Đukić, V., Vasiljević, S., & Dozet, G. (2021). The use of electrostatic field to improve soybean seed germination in organic production. Agronomy, 11(8), 1473. [DOI:10.3390/agronomy11081473]
31. Michel, B. E., & Kaufmann, M. R. (1973). The osmotic potential of polyethylene glycol 6000. Plant Physiology, 51(5), 914-916. [DOI:10.1104/pp.51.5.914] [PMID] [PMCID]
32. Ministry of Agriculture-Jahad. 2019. Agricultural Sstatistics. Vol. 1. Crop Plants. Statistics, Information and communication Technology Center, Ministry of Agriculture-Jahad, Tehtan, Iran. [In Persian]
33. Mirmazloum, I., Kiss, A., Erdélyi, É., Ladányi, M., Németh, É. Z., & Radácsi, P. (2020). The effect of osmopriming on seed germination and early seedling characteristics of Carum carvi L. Agriculture, 10(4), 94. [DOI:10.3390/agriculture10040094]
34. Mohammadi, R., Roshandel, P., & Tadayon, A. (2018). Investigating the growth, physiology and antioxidant system of hyssop under the influence of magnetopriming. New Findings in Biological Sciences, 6(1), 106-115. SID. https://sid.ir/paper/250522/fa [DOI:10.29252/nbr.6.1.106]
35. Mohidem, N. A., Hashim, N., Shamsudin, R., & Che Man, H. (2022). Rice for food security: Revisiting its production, diversity, rice milling process and nutrient content. Agriculture, 12(6), 741. [DOI:10.3390/agriculture12060741]
36. Mshenskaya, N. S., Grinberg, M. A., Kalyasova, E. A., Vodeneev, V. A., Ilin, N. V., Slyunyaev, N. N., Mareev, E. A., & Sinitsyna, Y. V. (2023). The effect of an extremely low-frequency electromagnetic field on the drought sensitivity of wheat plants. Plants, 12(4), 826. [DOI:10.3390/plants12040826] [PMID] [PMCID]
37. Mumtaz, S., Javed, R., Rana, J. N., Iqbal, M., & Choi, E. H. (2024). Pulsed high power microwave seeds priming modulates germination, growth, redox homeostasis, and hormonal shifts in barley for improved seedling growth: Unleashing the molecular dynamics. Free Radical Biology and Medicine, 222, 371-385. [DOI:10.1016/j.freeradbiomed.2024.06.013] [PMID]
38. Nyasulu, M., Zhong, Q., Li, X., Liu, X., Wang, Z., Chen, L., He, H., & Bian, J. (2024). Uncovering novel genes for drought stress in rice at germination stage using genome wide association study. Frontiers in Plant Science, 15, 1421267. [DOI:10.3389/fpls.2024.1421267] [PMID] [PMCID]
39. Panuccio, M., Chaabani, S., Roula, R., & Muscolo, A. (2018). Bio-priming mitigates detrimental effects of salinity on maize improving antioxidant defense and preserving photosynthetic efficiency. Plant Physiology and Biochemistry, 132, 465-474. [DOI:10.1016/j.plaphy.2018.09.033] [PMID]
40. Paunov, M., Angelova, B., Goltsev, V., Atanasova, G., Atanasov, B., Atanasov, N., & Kouzmanova, M. (2025). Electromagnetic field used in precision agriculture does not induce long-term effects in wheat and maize. Proceedings of the Bulgarian Academy of Sciences, 78(7), 1083-1093. [DOI:10.7546/CRABS.2025.07.15]
41. Putri, A. E., Agustrina, R., & Marjunus, R. (2024). Germination responses of old seeds from lampung local rice to magnetic fields and drought stress. Biodidaktika: Jurnal Biologi dan Pembelajarannya, 19(2), 68-78. http://dx.doi.org/10.30870/biodidaktika.v19i2.24902 [DOI:10.30870/biodidaktika.v19i2.24902]
42. Rehman, H. U., Basra, S., Ahmed, M., & Farooq, M. (2011). Field appraisal of seed priming to improve the growth, yield, and quality of direct seeded rice. Turkish Journal of Agriculture and Forestry, 35(4), 357-365. [DOI:10.3906/tar-1004-954]
43. Rifna, E. J., Ramanan, K. R., & Mahendran, R. (2019). Emerging technology applications for improving seed germination. Trends in Food Science and Technology, 86, 95-108. [DOI:10.1016/j.tifs.2019.02.029]
44. Sarı, M. E., Demir, İ., Yıldırım, K., & Memiş, N. (2023). Magnetopriming enhance germination and seedling growth parameters of onion and lettuce seeds. International Journal of Agriculture Environment and Food Sciences, 7(3), 468-475. [DOI:10.31015/jaefs.2023.3.1]
45. Sarraf, M., Deamici, K. M., Taimourya, H., Islam, M., Kataria, S., Raipuria, R. K., Abdi, G., & Brestic, M. (2021). Effect of magnetopriming on photosynthetic performance of plants. International Journal of Molecular Sciences, 22(17), 9353. [DOI:10.3390/ijms22179353] [PMID] [PMCID]
46. Sathyabharathi, B., Nisha, C., Jaisneha, J., Nivetha, V., Aathira, B., Ashok, S., & Sampath, S. (2022). Screening of genotypes for drought tolerance using PEG 6000 in different landraces of rice (Oryza sativa L.). International Journal of Plant and Soil Science, 34(22), 1424-1434. [DOI:10.9734/IJPSS/2022/v34i2231515]
47. Shabrangy, A. (2024). Using magnetic fields to enhance the seed germination, growth, and yield of plants. In Maghuly F. (Ed.), Plant Functional Genomics: Methods in Molecular Biology, 2788. [DOI:10.1007/978-1-0716-3782-1_22] [PMID]
48. Sharafi, S. (2025). Enhanced seedling growth of annual medic under salt-drought stress through ultrasonic wave and magnetic field treatments. Applied Water Science, 15, 59. [DOI:10.1007/s13201-025-02399-0]
49. Sharma, H. S., Fleming, C., Selby, C., Rao, J., & Martin, T. (2014). Plant biostimulants: a review on the processing of macroalgae and use of extracts for crop management to reduce abiotic and biotic stresses. Journal of Applied Phycology, 26, 465-490. [DOI:10.1007/s10811-013-0101-9]
50. Siddique, F., Ahmed, M. S., Javaid, R. A., Hanif, A., Rabnawaz, M., Arshad, M., & Majeed, A. (2023). Screening of elite coarse rice lines for drought stress simulated by polyethylene glycol (PEG) at seedling stage. Pakistan Journal of Agricultural Research, 36(1), 71-79. [DOI:10.17582/journal.pjar/2023/36.1.71.79]
51. Singh, N., Singh, R., Meena, V., & Meena, R. (2015). Can we use maize (Zea mays) rhizobacteria as plant growth promoter. Vegetos, 28(1), 86-99. [DOI:10.5958/2229-4473.2015.00012.9]
52. Soran, M.-L., Stan, M., Niinemets, Ü., & Copolovici, L. (2014). Influence of microwave frequency electromagnetic radiation on terpene emission and content in aromatic plants. Journal of Plant Physiology, 171(15), 1436-1443. [DOI:10.1016/j.jplph.2014.06.013] [PMID] [PMCID]
53. Tanou, G., Fotopoulos, V., & Molassiotis, A. (2012). Priming against environmental challenges and proteomics in plants: update and agricultural perspectives. Frontiers in Plant Science, 3, 216. [DOI:10.3389/fpls.2012.00216] [PMID] [PMCID]
54. Ullah, A., Nisar, M., Ali, H., Hazrat, A., Hayat, K., Keerio, A. A., Ihsan, M., Laiq, M., Ullah, S., & Fahad, S. (2019). Drought tolerance improvement in plants: an endophytic bacterial approach. Applied Microbiology and Biotechnology, 103, 7385-7397. [DOI:10.1007/s00253-019-10045-4] [PMID]
55. Urnukhsaikhan, E., Bold, B. E., Khurelbaatar, L., Bazarvaani, A., & MishigOchir, T. (2025). Effects of electromagnetic field on seed germination, β-amylase activity, total protein content, water uptake, and growth of wheat seedlings (Triticum aestivum). Bioelectromagnetics, 46(5), e70011. [DOI:https://doi.org/10.1002/bem.70011] [PMID]
56. Vasiqeh Shamsabadi, A., Modarres Sanavy, S. A. M., Modarres Vamghi, S. M., & Keshavarz, H. (2018). Effect of magnetic field on some physiological traits and germination of safflower crop seeds and four important weed species. Journal of Plant Research (Iranian Journal of Biology), 31(1), 184-196. SID. https://sid.ir/paper/395946/fa. [In Persian]

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