Effects of the electromagnetic field of Wi-Fi systems and experimental gadget M4 on growth, development and photosynthesis of wheat
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Keywords

radio-frequency electromagnetic fields
Wi-Fi router
gadget M4
plant growth
plant development
photosynthetic pigments
chloroplastogenesis
Triticum aestivum

How to Cite

Roche, J., Didyk, N., Ivanytska, B., Zaimenko, N., & Chudovska, O. (2020). Effects of the electromagnetic field of Wi-Fi systems and experimental gadget M4 on growth, development and photosynthesis of wheat. Plant Introduction, (85/86), 15-24. https://doi.org/10.46341/PI2020008

Abstract

The objective of this study was to assess the effects of the electromagnetic field of a Wi-Fi system and the experimental gadget M4 developed by SAS “IRDT” (France) on wheat seed germination, growth and photosynthetic activity of juvenile plants.

Material and methods. The test-plants were grown under controlled conditions of light, temperature and humidity for eight days in a pot experiment modeling the following treatments: (1) without the electromagnetic field of Wi-Fi systems (control); (2) at a distance of 30 cm from the operating Wi-Fi router; (3) at a distance of 30 cm from operating Wi-Fi router and the experimental gadget M4.

The test plant development and vitality were assessed using indices of seed germination, growth rates (shoot height, root length, number of lateral roots, shoot and root dry weights), photosynthetic pigment content in leaves, and the number of chloroplasts per a mesophyll cell in foliar tissues.

Results. It was found that the electromagnetic field of the Wi-Fi router initially stimulated, but then suppressed the germination of seeds, reduced the growth of shoots and roots, the content of photosynthetic pigments and genesis of the chloroplasts in the mesophyll tissues in leaves of juvenile wheat plants.

The root length was the most sensitive morphometric parameter to the electromagnetic field of the Wi-Fi router. The use of the gadget M4 completely compensated the negative impact of the Wi-Fi router on the seed germination, shoots growth, and partially compensated for the suppression of root growth, the genesis of the chloroplasts, chlorophyll a and b content in wheat leaves.

Conclusion. The attenuation effect of gadget M4 against the damaging effect of electromagnetic fields of anthropogenic origin is promising, and further investigations are required to observe the effects in the long term, from sowing to maturity, including the next generation of seeds.

https://doi.org/10.46341/PI2020008
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References

Afzal, M., & Mansoor, S. (2012). Effect of mobile phone radiations on morphological and biochemical parameters of mung bean (Vigna radiata) and wheat (Triticum aestivum) seedlings. Asian Journal of Agricultural Sciences, 4(2), 149–152.

Akbal, A., Kiran, Y., Sahin, A., Turgut-Balik, D., & Balik, H. H. (2012). Effects of electromagnetic waves emitted by mobile phones on germination, root growth, and root tip cell mitotic division of Lens culinaris Medik. Polish Journal of Environmental Studies, 21(1), 23–29.

Atasoy, H. I., Gunal, M. Y., Atasoy, P., Elgun, S., & Bugdayci, G. (2013). Immunohistopathologic demonstration of deleterious effects on growing rat testes of radiofrequency waves emitted from conventional Wi-Fi devices. Journal of Pediatric Urolology, 9(2), 223–229. https://doi.org/10.1016/j.jpurol.2012.02.015

Blinova, N. K, Starovoytova, O. D., Ishkovа, Y. G., & Tarasov, V. Y. (2015). Effect of electromagnetic radiation on Wi-Fi vigor seeds. Bulletin of the East Ukrainian National University named after Vladimir Dahl, 224(7), 7–11.

Castellina, A., & Donato, F. (2012). Astrophysics of galactic charged cosmic rays. In T. D. Oswalt, I. S. McLean, H. E. Bond, L. French, P. Kalas, M. Barstow, G. F. Gilmore, W. Keel (Eds.), Planets, stars, and stellar systems (pp. 725–788). Dordrecht: Springer.

Chen, H.-Y., & Chen, C. (2014). Effects of mobile phone radiation on germination and early growth of different bean species. Polish Journal of Environmental Studies, 23(6), 1949–1958. https://doi.org/10.15244/pjoes/24254

Halgamuge, M. N., Yak, S. K., & Eberhardt, J. L. (2015). Reduced growth of soybean seedlings after exposure to weak microwave radiation from GSM 900 mobile phone and base station. Bioelectromagnetics, 36(2), 87–95. https://doi.org/10.1002/BEM.21890

Hiscox, J. D., & Israelstam, C. F. (1979). A method for the extraction of chlorophyll from leaf tissue without maceration. Canadian Journal of Botany, 57, 1332–1334.

Jinapang, P., Prakob, P., Wongwattananard, P., Islam, N. E., & Kirawanich, P. (2010). Growth characteristics of mung beans and water convolvuluses exposed to 425-MHz electromagnetic fields. Bioelectromagnetics, 31(7), 519–527. https://doi.org/10.1002/bem.20584

Kostoff, R. N, Heroux, P., Aschner, M., & Tsatsakis, A. (2020). Adverse health effects of 5G mobile networking technology under real-life conditions. Toxicology Letters, 323(1), 35–40. https://doi.org/10.1016/j.toxlet.2020.01.020

Kumar, A., Kaur, S., Chandel, S., Pal Singh H., Batish, D. R., & Kohli R. K. (2020). Comparative cyto- and genotoxicity of 900 MHz and 1800 MHz electromagnetic field radiations in root meristems of Allium cepa. Ecotoxicology and Environmental Safety, 188(30), 109786. https://doi.org/10.1016/j.ecoenv.2019.109786

Kumar, A., Singh, H. P., Batish, D. R., Kaur, S., & Kohli, R. K. (2015). EMF radiations (1800 MHz)-inhibited early seedling growth of maize (Zea mays) involves alterations in starch and sucrose metabolism. Protoplasma, 253(4), 1–7. https://doi.org/10.1007/s00709-015-0863-9

McElroy, J. S., & Kopsell, D. A. (2009). Physiological role of carotenoids and other antioxidants in plants and application to turfgrass stress management. New Zealand Journal of Crop and Horticultural Science, 37(4), 327–333. https://doi.org/10.1080/01140671.2009.9687587

Mildažienė, V., Aleknavičiūtė, V., Žūkienė, R., Paužaitė, G., Naučienė, Z., Filatova, I., Lyushkevich, V., Haimi, P., Tamošiūnė, I., & Baniulis, D. (2019). Treatment of common sunflower (Helianthus annus L.) seeds with radio-frequency electromagnetic field and cold plasma induces changes in seed phytohormone balance, seedling development and leaf protein expression. Scientific Reports, 9(1), 6437. https://doi.org/10.1038/s41598-019-42893-5

Mokronosov, A. T. (1978). Method for quantitative assessment of the structure and functional activity of photosynthetic tissues and organs. In A. T. Mokronosov, & N. A. Borzenkova (Eds.), Works on applied botany, genetics and selection (pp. 119–131). Sverdlovsk: Uralski Gosuniversitet. (In Russian)

Moroz, I., & Chemerys, I. (2017). Influence of electromagnetic radiation on plant growth. In Proceedings of the conference for junior researchers “Science – Future of Lithuania” (pp. 1–8). Vilnius, Lithuania. https://doi.org/10.3846/aainz.2017.012

Panagopoulos, D. J. (2019). Comparing DNA damage induced by mobile telephony and other types of man-made electromagnetic fields. Mutation Research / Reviews in Mutation Research, 781, 53–62. https://doi.org/10.1016/j.mrrev.2019.03.003

Răcuciu, M., Iftode, C., & Miclaus, S. (2015). Inhibitory effects of low thermal radiofrequency radiation on physiological parameters of Zea mays seedlings growth. Romanian Journal of Physics, 60(3–4), 603–612.

Sharma, S., & Parihar, L. (2014). Effect of mobile phone radiation on nodule formation in the leguminous plants. Current World Environment Journal, 9(1), 145–155. https://doi.org/10.12944/CWE.9.1.21

Singh, H. P., Sharma, V. P., Batish, D. R., & Kohli, R. K. (2012). Cell phone electromagnetic field radiations affect rhizogenesis through impairment of biochemical processes. Environmental Monitoring and assessment, 184(4), 1813–1821. https://doi.org/10.1007/s10661-011-2080-0

Tkalec, M., Malarić, K., & Pevalek-Kozlina, B. (2005). Influence of 400, 900, and 1900 MHz electromagnetic fields on Lemna minor growth and peroxidase activity. Bioelectromagnetics, 26(3), 185–193. https://doi.org/10.1002/bem.20104

Tkalec, M., Malarić, K., & Pevalek-Kozlina, B. (2007). Exposure to radiofrequency radiation induces oxidative stress in duckweed Lemna minor L. Science of the Total Environment, 388(1–3), 78–89. https://doi.org/10.1016/j.scitotenv.2007.07.052

Vasilieva, E. G. (2008). The mechanism of influence of electromagnetic fields on living organism. Bulletin of the Astrakhan State Technical University, 44(3), 186–191.

Vian, A., Davies, E., Gendraud, M., & Bonnet, P. (2016). Plant responses to high frequency electromagnetic fields. BioMed Research International, 2016, 1830262. https://doi.org/10.1155/2016/1830262

Waldmann-Selsam, C., Balmori-de la Puente, A., Breunig, H., & Balmori, A. (2016). Radiofrequency radiation injures trees around mobile phone base stations. Science of The Total Environment, 572, 554-569. https://doi.org/10.1016/j.scitotenv.2016.08.045

Zadoya, N. I. (2014). Electromagnetic safety: A textbook for bachelors in the field of power engineering and electrical engineering. Rubtsovsk: Rubtsovsk Industrial Institute. (In Russian)

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