Survival rates and pro-oxidant-antioxidant systems of germinated Yakutian plant seeds pretreated with super-weak constant magnetic fields of different flux densities
https://doi.org/10.31242/2618-9712-2023-28-2-283-292
Abstract
The aim of this study was to identify physiological and biochemical changes in seedlings of wild plants of Yakutia, grown from seeds, which have received a pre-sowing, super-weak constant magnetic field treatment of different magnetic flux densities. Review of literature sources allows us to conclude that the weak effects of low-intensity fields (nonthermal character) have not been studied sufficiently so far. The study was conducted on seeds from 14 different species of wild plants native to Yakutia. The seeds were subjected to different magnetic flux strengths of 0.2–4.0 mT for 24 hours and then were germinated on filter paper. The criterion for evaluating the effect of the super-weak constant magnetic field was the formation of a true leaf in seedlings (survival rate). The intensity of lipid peroxidation processes was recorded as a pro-oxidant reaction. The total content of low molecular weight antioxidants was determined as an example of the non-enzymatic antioxidant system. The activity of an antioxidant enzyme, superoxide dismutase, was determined. The effects of the super-weak constant magnetic fields were evaluated using regression and statistical methods. Based on the working hypothesis is that the formation of the present leaf is dependent on changes in the pro-oxidant-antioxidant equilibrium in the cells of the seedlings as a result of the action on them by the super-weak constant magnetic field as a function of the magnetic flux density. We showed that the survival rate of seedlings grown from the seeds pre-treated by super-weak constant magnetic fields of different magnetic flux density for 24 hours leads to the activation of lipid peroxidation and depends on the adaptation processes of antioxidant systems (the sum of low-molecular antioxidants and superoxide dismutase activity): simple compensation or hypercompensation. In the second case, the action of super-weak constant magnetic fields leads to an increase in the survival rate of seedlings by the criterion of the formation of the true leaf. The study is of significance for specialists in magneto-biology and researchers of plant antioxidant systems.
Keywords
About the Authors
M. M. SHASHURINRussian Federation
SHASHURIN, Mikhail Mikhailovich, Cand. Sci. (Biol.), Senior Researcher
AuthorID: 157342
A. N. ZHURAVSKAYA
Russian Federation
ZHURAVSKAYA, Alla Nikolaevna, Dr. Sci. (Biol.), Chief Researcher
AuthorID: 88427
References
1. Shashurin M.M., Zhuravskaya A.N. Prooxidantantioxidant system of plants grown from seeds treated with a constant magnetic field. Журнал физиологии и биохимии стресса = Journal of Stress Physiology & Biochemistry. 2023;19(1):43–48. (In Russ.)
2. Temuryants N.A., Vladimirskiy B.M., Tishkin O.G. Microwave electromagnetic signals in the biological world. Kiev: Naukova Dumka; 1992. 187 p. (In Russ.)
3. Bingi V.N. Physical problems of the action of weak magnetic fields on biological systems. Uspekhi Fizicheskikh Nauk. 2003;173(3):265–300. (In Russ.). https://doi.org/10.3367/UFNr.0173.200303b.0265
4. Burlakova E.B., Konradov A.A., Goloshapov A.N., Zhizhina G.P. New aspects of regularity action of low intensity radiation. Radiation biology. Radioecology, 1999; 39(1):26–34. (In Russ.)
5. Serdyukov Yu.A., Novickij Yu.I. Effect of a weak constant magnetic field on the activity of antioxidant enzymes in radish seedlings. Russian Journal of Plant Physiology. 2013;1(60):66–75. (In Russ.). https://doi.org/10.7868/S0015330313010065
6. Shabrangi A., Majd A., Sheidai M., Nabyouni M., Dorranian D. Effects of extremely low frequency electromagnetic fields on the antioxidant enzymes activity of C3 and C4 plants. Progress In Electromagnetics Research Symposium Proceedings, Cambridge, USA, 2010; 1083–1087.
7. Slepcov I.V., Shashurin M.M., Zhuravskaya A.N. Short-term exposure to a constant magnetic field on the physiological, morphological, and biochemical characteristics of Amaranthus retroflexus, Agastache rugosa, and Thlaspi arvense seedlings. Plant physiology. 2019;1(66):66– 72. (In Russ.). https://doi.org/10.1134/S0015330318050159
8. Baryshev M.G., Kasyanov G.I. Effect of electromagnetic fields on biochemical processes in plant seeds. Izvestiya vuzov. Pishevaya tehnologiya. 2002;1:21–23. (In Russ.)
9. Garkavi JI.X., Kvakina E.B., Shihlyarova A.I., Kuzmenko T.S., Barsukova L.P., Maryanovskaya G.Ya., Shejko E.A., Evstratova O.F., Zhukova G.V. Magnetic fields, adaptive reactions and self-organization of living systems. Biophysics. 1996;1(41):898–905. (In Russ.)
10. Ermakov A.I. Methods of biochemical research of plants. Leningrad: Agropromizdat; 1987. 430 p. (In Russ.)
11. Lebedeva O.V., Ugarova N.N., Berezin I.V. Kinetic study of the oxidation reaction of o-dianisidine with hydrogen peroxide in the presence of horseradish peroxidase. Biochemistry. 1977;7(42):1372–1379. (In Russ.)
12. Giannopolitis C.N., Ries S.K. Superoxide Dismutases: I. Occurrence in Higher Plants. Plant Physiology. 1977;59:309–314.
13. Lakin G.F. Biometrics. Moscow: Vysshaya shkola; 1980. 293 p. (In Russ.)
14. Prokop’ev I.A., Filippova G.V., Shein A.A., Gabyshev D.V. Impact of urban anthropogenic pollution on seed production, morphological and biochemical characteristics of chamomile, Matricaria chamomila L. Russian journal of ecology. 2014;1(45):18–23. https://doi.org/10.1134/S106741361306009X
15. Sytar O., Kumar A., Latowski D., Kuczynska P., Strzałka K., Prasad M.N.V. Heavy metal-induced oxidative damage, defense reactions, and detoxification mechanisms in plants. Acta Physiolgy Plant. 2013:(35):985– 999. https://doi.org/10.1007/s11738-012-1169-6
16. Mittler R. Oxidative stress, antioxidants and stress tolerance. Trends Plant Sci. 2002;(7):405–410.
17. Galland P., Pazur A. Magnetoreception in plants. Journal of Plant Research. 2005;6(118):371–389. https://doi.org/10.1007/s10265-005-0246-y
Review
For citations:
SHASHURIN M.M., ZHURAVSKAYA A.N. Survival rates and pro-oxidant-antioxidant systems of germinated Yakutian plant seeds pretreated with super-weak constant magnetic fields of different flux densities. Arctic and Subarctic Natural Resources. 2023;28(2):283-292. (In Russ.) https://doi.org/10.31242/2618-9712-2023-28-2-283-292