The effect of pre-planting treatment with weak non-ionizing pulse fields on the productivity and quality of potato cultivars
https://doi.org/10.30766/2072-9081.2024.25.5.794-804
Abstract
Field research was conducted in 2021–2023 in the conditions of the Komi Republic. Tubers of 9 potato cultivars were subjected to pre-treatment with weak non-ionizing pulsed alternating electromagnetic fields (EMF). The electromagnetic effect was carried out by the TOR-bio device in the 15/5 mode (15 minutes of exposure, 5 minutes of break, three times a day before planting) with a pulse frequency of 125 Hz. The effectiveness of both a single treatment in 2023 and the consequences of annual EMF treatments of tubers of the 2022 harvest and their offspring of 2021 and 2022 were evaluated. It was found that the effectiveness of the action of an alternating electromagnetic field depended on the cultivar. In EMF-sensitive potato cultivars, an earlier appearance of mass seedlings (‘Pechorsky’, ‘Lux’, ‘Terra’) and an increase in yield by 26–75 % (‘Legenda’, ‘Lux’, ‘Mishka’, ‘Argo’) were observed. The increase in the yield of ‘Mishka’ and ‘Lux’ cultivars can be explained by a fairly significant (p≤ 0.05) increase in the number of tubers formed on the bush after EMF treatment. In the harvest of the ‘Pechorsky’ cultivar obtained in 2023 from EMF-treated tubers, an increased content of dry matter was noted in the autumn-spring storage period and starch in the autumn period. The analysis of the consequences of repeated EMF treatment of tubers revealed a positive effect on the intensity of plant development and the quality of the harvest of the ‘Pechorsky’ cultivar of local breeding, which may indicate the occurrence of stable changes in its genotype.
About the Authors
V. G. ZainullinRussian Federation
Vladimir G. Zainullin, DSc in Biological Science, professor, leading researcher
27, Syktyvkar, Komi Republic, 167023
A. N. Pozhirickaya
Russian Federation
Aleksandra N. Pozhirickaya, junior researcher
27, Syktyvkar, Komi Republic, 167023
A. M. Turlakova
Russian Federation
Antonina M. Turlakova, junior researcher
27, Syktyvkar, Komi Republic, 167023
A. V. Partala
Russian Federation
Alexander V. Partala, Specialist of the Scientific Department
Gogolevsky b-r, 31, building 2, Moscow, 119019
O. V. Ovchinnikov
Russian Federation
Oleg V. Ovchinnikov, Member of the Scientific Department, Chairman of the Board of Directors
Gogolevsky b-r, 31, building 2, Moscow, 119019
E. V. Bondarchuk
Russian Federation
Elena V. Bondarchuk, Vice-President
Gogolevsky b-r, 31, building 2, Moscow, 119019
I. F. Turkanov
Russian Federation
Igor F. Turkanov, Head
Gogolevsky b-r, 31, building 2, Moscow, 119019
E. A. Galkina
Russian Federation
Ekaterina A. Galkina, Specialist
Gogolevsky b-r, 31, building 2, Moscow, 119019
V. G. Gryaznov
Russian Federation
Valery G. Gryaznov, PhD in Engineering, Deputy Head
Gogolevsky b-r, 31, building 2, Moscow, 119019
References
1. Radhakrishnan R. Magnetic field regulates plant functions, growth and enhances Tolerance against environmental stresses. Physiology and Molecular Biology of Plants. 2019;25(5):1107–1119. DOI: https://doi.org/10.1007/s12298-019-00699-9
2. Kalinin L. G., Boshkova I. L., Panchenko G. I., Kolomiychuk S. G. Influence of low-frequency and microwave electromagnetic fields on seeds. Biofizika = Biophysics. 2005;50(2):361–366. (In Russ.).
3. Erez М. E., Özbek М. Magnetic field effects on the physiologic and molecular pathway of wheat (Triticum turgidum L.) germination and seedling growth. Acta Physiologiae Plantarum. 2024;46(5). DOI: https://doi.org/10.1007/s11738-023-03631-7
4. Li Yu. V., Terekhova L. P., Alferova I. V., Galatenko O. A., Gapochka M. G. The application of succession analysis in combination with ehf irradiation to the selective isolation of actinomycetes from soil. Mikrobiologiya. 2003;72(1):131–135. (In Russ.).
5. Tambiev A. Kh., Kirikova N. N. Some new ideas about the reasons for the formation of stimulating effects of EHF radiation. Biomeditsinskaya radioelektronika = Journal Biomedical Radioelectronics. 2000;(1):23–33. (In Russ.).
6. Tambiev A. Kh., Kirikova N. N., Betskiy O. V., Gulyaev Yu. V. Millimeter waves and photosynthetic organisms. Moscow: Radiotekhnika, 2003. 472 p.
7. Schmidtpott S. M., Danho S., Kumar V., Seidel T., Schöllhorn W., Dietz K.-J. Scrutinizing the Impact of Alternating Electromagnetic Fields on Molecular Features of the Model Plant Arabidopsis thaliana. International Journal of Environmental Research and Public Health. 2022;19(9):5144. DOI: https://doi.org/10.3390/IJERPH19095144
8. Mazets Zh. E., Kayzinovich K. Ya., Pushkina N. V., Rodionova V. N., Spiridovich E. V. Effect of low-intensity electromagnetic radiation on amylase activity in seedlings of Lupinus angustifolius L. Trudy Belorusskogo gosudarstvennogo universiteta. Seriya: Fiziologicheskie, biokhimicheskie i molekulyarnye osnovy funktsionirovaniya biosistem = Proceedings of the Belarusian State University. Series of Physiological, Biochemical and Molecular Biology Sciences. 2013;8(2):95–101. (In Belarus). URL: https://elibrary.ru/item.asp?id=44388018
9. Mazets Zh. E., Kayzinovich K. Ya., Shutova A. G. On the issue of the mechanisms of interaction of low-intensity electromagnetic radiation with plant objects. Vestsi BDPU Seryya 3. Fizika, matematyka, infarmatyka, biyalogiya, geagrafiya». 2014;(1):26–31. (In Belarus). URL: https://elibrary.ru/item.asp?id=38207219
10. Kale M. I. Effect of EHF radiation on physiological processes of brewer's barley seed germination. Vestnik Nizhegorodskogo universiteta im. N. I. Lobachevskogo = Vestnik of Lobachevsky University of Nizhni Novgorod. 2010;(2-2):399–401. (In Russ.). URL: https://elibrary.ru/item.asp?id=15529278
11. Radhakrishnan R. See pretreatment with magnetic field alters the storage proteins and lipid profiles in harvested soybean seeds. Physiology and Molecular Biology of Plants. 2018;24(2):343–347. DOI: https://doi.org/10.1007/s12298-018-0505-8
12. Device for suppressing the vital activity of pathogenic microorganisms and viruses by electromagnetic radiation: patent RF no. 2765973. 2022. URL: https://patentimages.storage.googleapis.com/47/71/dd/8682b68ce2ece0/RU2765973C1.pdf
13. A method of suppressing the vital activity of pathogenic microorganisms and viruses by electromagnetic radiation: patent RF no. 2020124927. 2022. URL: https://patents.s3.yandex.net/RU2766002C1_20220207.pdf
14. Bondarchuk E. V., Ovchinnikov O. V., Turkanov I. F., Partala A. V., Shulgina E. A., Seliverstov A. F., Kazyberova A. Yu., Zaynullin V. G., Yudin A. A. Weak pulsed electromagnetic fields enhance potato yield and immunity. Kartofel' i ovoshchi = Potato and Vegetables. 2023;(4):35–40. (In Russ.). DOI: https://doi.org/10.25630/PAV.2023.91.50.004
15. Aydin M., Taspinar M.S., Cakmak Z. E., Dumlupinar R., Agar G. Static magnetic field induced epigenetic changes in wheat callus. Bioelectromagnetics. 2016;37(7):504–511. DOI: https://doi.org/10.1002/bem.21997
16. Mildažienė V., Aleknavičiūtė V., Žūkienė R., Paužaitė G., Naučienė Z., Filatova I., et al. Treatment of common sunflower (Helianthus annuus L) seeds with radio-frequency electromagnetic field and cold plasma induces changes in seed phytohormone balance, seedling development and leaf protein expression. Scientific Reports. 2019;9(1):6437. DOI: https://doi.org/10.1038/s41598-019-42893-5
Review
For citations:
Zainullin V.G., Pozhirickaya A.N., Turlakova A.M., Partala A.V., Ovchinnikov O.V., Bondarchuk E.V., Turkanov I.F., Galkina E.A., Gryaznov V.G. The effect of pre-planting treatment with weak non-ionizing pulse fields on the productivity and quality of potato cultivars. Agricultural Science Euro-North-East. 2024;25(5):794–804. (In Russ.) https://doi.org/10.30766/2072-9081.2024.25.5.794-804