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Elektromanyetik Kirliliğin Sağlığa Etkileri

Year 2022, Volume: 2 Issue: 2, 67 - 79, 29.12.2022

Abstract

Çevremizde bulunan; elektrik akımı taşıyan kablolar, radyo frekans dalgaları yayan radyo ve televizyon verici ve alıcıları, cep telefonu baz istasyonları, yüksek gerilim hatları, trafolar, tüm elektrikle çalışan cihazlar elektromanyetik alan oluştururlar ve aynı zamanda kirlilik kaynaklıdır. Elektromanyetik alan kaynakları; telekomünikasyon alanında doğrudan rafyo frekans sinyalleri üzerinden haberleşme sağlamak için kullanılan cihazlardan yayılan dalgalar ile birlikte, amacı ortama herhangi bir elektromanyetik dalga yaymak olmayan ancak işleyişi için gerekli enerjinin kullanımı nedeniyle oluşan ve cihaz dışına yayılması önlenemeyen istenmeyen dalgaları yayan tüm cihazları içine alan geniş bir tanım olarak karşımıza çıkmaktadır. Halen etki mekanizmaları tam olarak açıklanmamış olan elektromanyetik alanların, hücrelerde hücre zarındaki reseptörlerin elektromanyetik alanlara duyarlı oldukları ve bu reseptörler üzerinden etkili oldukları düşünülmektedir. Hücrelerin iyonik yapıları üzerine etki eden elektromanyetik alanlar, hücre içerisinde iyonik değişimler ve dengesizlikler oluşturmaktadırlar. Bu değişimler hücrede RNA transkripsiyonu ve DNA sentezinde bozukluklar oluşturmasının yanı sıra hücrenin nörotransmitter ve hormonal uyarılara yanıtında da değişiklikler oluşturmaktadır. Bu etkiler genel olarak uzun dönemli maruziyet sonucu ortaya çıkmaktadır. Elektromanyetik alanların insanlar üzerindeki biyolojik etkileri hakkında birçok çalışma yapılmıştır. Bu çalışmalardan bazılarında, Elektromanyetik alanların kalp, vücut sıcaklığı ve kanın biyokimyasal değerleri üzerine etkileri olduğu gösterilmiştir. Buna karşın elektromanyetik alanların oluşturduğu elektriksel alan değerlerine kıyasla çok daha büyük enerjilerin vücudumuzdaki kimyasal reaksiyonlar sonucu oluştuğu gerçeğinden hareketle, vücudumuzdaki enerjiye oranla oldukça düşük kalan bu enerjinin DNA üzerinde kalıcı değişikliklere (mutasyon vb.) sebep olamayacağı da öne sürülen bir başka görüş de mevcuttur.

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Effects of Electromagnetic Pollution on Health

Year 2022, Volume: 2 Issue: 2, 67 - 79, 29.12.2022

Abstract

Cables carrying electric current, radio and television transmitters and receivers emitting radio frequency waves, cell phone base stations, high voltage lines, transformers, in short, all electrical devices around us create electromagnetic fields and are also caused by pollution. Electromagnetic field sources; It is a broad definition that includes all devices that emit unwanted waves whose purpose is not to emit any electromagnetic waves to the environment, but which cannot be prevented from spreading outside the device. comes out. It is thought that electromagnetic fields, whose mechanisms of action are still not fully explained, are sensitive to electromagnetic fields and act on these receptors. Electromagnetic fields acting on the ionic structures of cells create ionic changes and imbalances within the cell. These effects generally occur as a result of long-term exposure. Many studies have been conducted on the biological effects of electromagnetic fields on humans. In some of these studies, it has been shown that electromagnetic fields have effects on the heart, body temperature and biochemical values of the blood. On the other hand, based on the fact that much larger energies are formed as a result of chemical reactions in our body compared to the electrical field values created by electromagnetic fields, there is another view that claims that this energy, which is very low compared to the energy in our body, cannot cause permanent changes (mutation, etc.) on DNA.

References

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  • Atasoy, A., Sevim, Y., Kaya, I., Yilmaz, M., Durmus, A., Sonmez, M., Omay, S., Ozdemir, F., & Ovali, E. (2009). The effects of electromagnetic fields on peripheral blood mononuclear cells in vitro. Bratisl Lek Listy, 110(9), 526-529.
  • Baldi, I., Coureau, G., Jaffré, A., Gruber, A., Ducamp, S., Provost, D., Lebailly, P., Vital, A., Loiseau, H., & Salamon, R. (2011). Occupational and residential exposure to electromagnetic fields and risk of brain tumors in adults: a case–control study in Gironde, France. International Journal of Cancer, 129(6), 1477-1484.
  • Banik, S., Bandyopadhyay, S., & Ganguly, S. (2003). Bioeffects of microwave––a brief review. Bioresource Technology, 87(2), 155-159.
  • Belyaev, I. (2005). Nonthermal biological effects of microwaves: current knowledge, further perspective, and urgent needs. Electromagnetic Biology and Medicine, 24(3), 375-403.
  • Bonomini, F., & Rezzani, R. (2010). Aquaporin and blood brain barrier. Current Neuropharmacology, 8(2), 92-96.
  • Brusick, D., Albertini, R., McRee, D., Peterson, D., Williams, G., Hanawalt, P., & Preston, J. (1998). Genotoxicity of radiofrequency radiation. Environmental and Molecular Mutagenesis, 32(1), 1-16.
  • Burr, H. S., & Northrop, F. S. C. (1935). The electro-dynamic theory of life. The Quarterly Review of Biology, 10(3), 322-333.
  • Consales, C., Merla, C., Marino, C., & Benassi, B. (2012). Electromagnetic fields, oxidative stress, and neurodegeneration. International Journal of Cell Biology, 2012.
  • Coşkun, Ş., Balabanlı, B., Canseven, A., & Seyhan, N. (2009). Effects of continuous and intermittent magnetic fields on oxidative parameters in vivo. Neurochemical Research, 34(2), 238-243.
  • Daneman, R., & Prat, A. (2015). The blood–brain barrier. Cold Spring Harbor Perspectives in Biology, 7(1), a020412.
  • DosSantos, M. F., Holanda-Afonso, R. C., Lima, R. L., DaSilva, A. F., & Moura-Neto, V. (2014). The role of the blood–brain barrier in the development and treatment of migraine and other pain disorders. Frontiers In Cellular Neuroscience, 8, 302.
  • Draper, G., Vincent, T., Kroll, M. E., & Swanson, J. (2005). Childhood cancer in relation to distance from high voltage power lines in England and Wales: a case-control study. BMJ, 330(7503), 1290.
  • Elliott, P., Toledano, M. B., Bennett, J., Beale, L., De Hoogh, K., Best, N., & Briggs, D. (2010). Mobile phone base stations and early childhood cancers: case-control study. BMJ, 340.
  • Feng, Y., Zhou, Z., Fei, Q., & Wang, Y. (2022). RF-EMF Exposure Emitted From Mobile/cellular Phone and Risk of Glioma, Meningioma and Acoustic Neuroma: A Meta-analysis. Research Square. https://doi.org/10.21203/rs.3.rs-1249762/v1
  • Foletti, A., Lisi, A., Ledda, M., de Carlo, F., & Grimaldi, S. (2009). Cellular ELF signals as a possible tool in informative medicine. Electromagnetic Biology and Medicine, 28(1), 71-79.
  • Ghezel-Ahmadi, D., Engel, A., Weidemann, J., Budnik, L. T., Baur, X., Frick, U., Hauser, S., & Dahmen, N. (2010). Heavy metal exposure in patients suffering from electromagnetic hypersensitivity. Science of The Total Environment, 408(4), 774-778.
  • Giannoni, P., Badaut, J., Dargazanli, C., De Maudave, A. F. H., Klement, W., Costalat, V., & Marchi, N. (2018). The pericyte–glia interface at the blood–brain barrier. Clinical Science, 132(3), 361-374.
  • Giladi, M., Porat, Y., Blatt, A., Wasserman, Y., Kirson, E. D., Dekel, E., & Palti, Y. (2008). Microbial growth inhibition by alternating electric fields. Antimicrobial Agents and Chemotherapy, 52(10), 3517-3522.
  • Goodman, R., Bassett, C., & Henderson, A. S. (1983). Pulsing electromagnetic fields induce cellular transcription. Science, 220(4603), 1283-1285.
  • Goodman, R., & Henderson, A. S. (1988). Exposure of salivary gland cells to low-frequency electromagnetic fields alters polypeptide synthesis. Proceedings of the National Academy of Sciences, 85(11), 3928-3932.
  • Hallberg, Ö., & Morgan, L. (2011). The potential impact of mobile phone use on trends in brain and CNS tumors. J Neurol Neurophysiol S, 5.
  • Hardell, L. (2018). Effects of mobile phones on children's and adolescents’ health: A commentary. Child Development, 89(1), 137-140.
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There are 77 citations in total.

Details

Primary Language Turkish
Subjects Health Care Administration
Journal Section Reviews
Authors

Dursun Alper Yılmaz 0000-0001-8096-5504

İbrahim Hakkı Çağıran 0000-0003-3125-1198

Gökhan Dege 0000-0003-3125-1198

Metin Yıldız 0000-0003-0122-5677

Mehmet Salih Yıldırım 0000-0003-2632-4583

Publication Date December 29, 2022
Submission Date June 11, 2022
Published in Issue Year 2022 Volume: 2 Issue: 2

Cite

APA Yılmaz, D. A., Çağıran, İ. H., Dege, G., Yıldız, M., et al. (2022). Elektromanyetik Kirliliğin Sağlığa Etkileri. Muş Alparslan Üniversitesi Sağlık Bilimleri Dergisi, 2(2), 67-79.