Bioelectronic Medicine and Non-Communicable Diseases: Rationale for Clinical Significance, Prospects and Problems

Main Article Content

Ganna V. Nevoit https://orcid.org/0000-0002-1055-7844
Inga A. Bumblyte https://orcid.org/0000-0001-9806-750X
Maksim M. Potyazenko https://orcid.org/0000-0001-9398-1378
Olena Filiunova
Alfonsas L. Vainoras https://orcid.org/0000-0002-5732-8520
Ozar P. Mintser https://orcid.org/0000-0002-7224-4886

Keywords

Magnetoelectrochemical Theory of Metabolism, non-communicable diseases, bioelectronic medicine, quantum medicine

Abstract

The results of a theoretical study of the possibilities and prospects for solving the problem of non-communicable diseases (NCDs) are reported in the article. The authors present the ideas of the educational and scientific project “Bioelectronic Medicine or Look at Medicine Differently”, which is the result of the research. The aim of the study was to introduce the ideas of bioelectronic medicine as a promising direction for solving the problem of NCDs. This study is a fragment of the research work on "The development of algorithms and technologies for implementing a healthy lifestyle in patients with non-communicable diseases based on the study of functional status" (state registration number 0121U108237: UDC 613 616-056-06: 616.1/9-03). General scientific methods and theoretical methods were used in this theoretical study. Conclusions: Bioelectronic medicine is a promising direction for the further development of medicine and for solving the problem of NCDs because its ideas integrate modern biophysical knowledge about the structure and functioning of the nanolevel of living matter in vivo into knowledge about the functioning of the human body. This opens up new perspectives for studying the pathology of NCDs. Bioelectronic medicine, as a promising direction for solving the problem of NCDs, needs to be further developed and its ideas need to be popularized among the world’s scientific community.

Abstract 13 | Bioelectronic Medicine and NCDs Downloads 17

References

[1] The Lancet. Non-communicable diseases: what now? Editorial. Lancet. 2022;399(10331):1201. https://doi.org/10.1016/S0140-6736(22)00567-0.
[2] Kostova D, Richter P, Van Vliet G, Mahar M, Moolenaar RL. The Role of Noncommunicable Diseases in the Pursuit of Global Health Security. Health Security 2021;19(3):288–301. https://doi.org/10.1089/hs.2020.0121.
[3] Andrade CAS, Mahrouseh N, Gabrani J, et al. Inequalities in the burden of non-communicable diseases across European countries: a systematic analysis of the Global Burden of Disease 2019 study. International Journal of Equity in Health. 2023;22(1):140. https://doi.org/10.1186/s12939-023-01958-8.
[4] World Health Organization (WHO). Noncommunicable Diseases. https://www.who.int/health-topics/noncommunicable-diseases#tab=tab_1. Accessed September 27, 2024.
[5] World Health Organization (WHO). Global action plan for the prevention and control of noncommunicable diseases 2013–2030. Geneva. https://www.who.int/teams/noncommunicable-diseases/governance/roadmap. Accessed September 27, 2024.
[6] Wells JD. Discovery Beyond the Standard Model of Elementary Particle Physics. In: SpringerBriefs in Physics. Springer Nature Switzerland AG, 2020.
[7] Paganini P. Fundamentals of Particle Physics: Understanding the Standard Model. Cambridge University Press, 2023.
[8] Hübsch T. Advanced Concepts in Particle and Field Theory. Cambridge University Press, 2023.
[9] Gupta VP. Principles and Applications of Quantum Chemistry. Academic Press, 2016.
[10] Marais A, Adams B, Ringsmuth AK, et al. The future of quantum biology. Journal of the Royal Societey Interface. 2018;15(148):20180640. https://doi.org/10.1098/rsif.2018.0640.
[11] Mintser OP, Semenets VV, Potiazhenko MМ, Podpruzhnykov PМ, Nevoit GV. The study of the electromagnetic component of the human body as a diagnostic indicator in the examination of patients with non-communicable diseases: problem statement. Wiadomości Lekarskie Medical Advances 2020; 73(6): 1279‒1283, https://doi.org/10.36740/WLek202006139.
[12] Mintser OP, Potyazhenko MM, Nevoit GV. Mahnitoelektrokhimichna teoriya obminu rechovyn. Tom 1. Kontseptualizatsiya [Magnetoelectrochemical Theory of Metabolism. Volume 1 Conceptualization]: monograph. in 2 volumes Kyiv-Poltava. Interservice, 2021. http://repository.pdmu.edu.ua/bitstream/123456789/16848/1/MagnitoElectroChemicalTheoria_T1.pdf (Ukrainian). Accessed September 27, 2024.
[13] Nevoit GV. Magnetoelectrochemical concept of metabolism: postulates and main conclusions. Part 1. (in Ukrainian). Current issues of modern medicine: Bulletin of the Ukrainian Medical Dental Academy. 2021;21(1):203–209, https://doi.org/10.31718/2077-1096.21.1.203.
[14] Mintser O, Potiazhenko M, Nevoit G. Informational analytical representations of the magneto-electrochemical theory of life and health. Journal of Applied Interdisciplinary Research. 2023;2:91–98. https://doi.org/10.25929/38d5-p759.
[15] Nevoit G, Filiunova O, Potyazhenko M, Minser O, Bumblyte IA, Vainoras A. Modern biophysical view of electromagnetic processes of the phenomenon of life of living biological systems as a promising basis for the development of complex medicine: towards the concept of Bioelectronic Medicine. Journal of Complexity in Health Sciences. 2023;6(2):49–66. https://doi.org/10.21595/chs.2023.23867.
[16] Nevoit G, Vlasova O, Ryabushko M, Zviagolska I, Moisieieva N, Potyazhenko M. Magnetoelectrochemical theory of metabolism and life: What is it, when is it needed and what to expect from it for medicine and reflexology (literature review). Fitoterapiia. Chasopys – Phytotherapy. Journal. 2024;2:47–62.
[17] Nevoit G, Bumblyte IA, Potyazhenko M, Mintser O. Modern biophysical view of electromagnetic processes of the phenomenon of life of living biological systems as a promising basis for the development of complex medicine: the role of cell membranes. Journal of Complexity in Health Sciences. 2022;5(1):22‒34, https://doi.org/10.21595/chs.2022.22787.
[18] Nevoit G, Bumblyte IA, Potyazhenko M, Minser O. Modern biophysical view of electromagnetic processes of the phenomenon of life of living biological systems as a promising basis for the development of complex medicine: the role of water. Journal of Complexity in Health Sciences. 2022;2(5):45–57, https://doi.org/10.21595/chs.2022.23089.
[19] Nevoit G, Bumblyte IA, Potyazhenko M, Mintser O, Vainoras A. Modern biophysical view of electromagnetic processes of the phenomenon of life of living biological systems as a promising basis for the development of complex medicine: the role of biophotons. Journal of Complexity in Health Sciences. 2023;6(1):1–14, https://doi.org/10.21595/chs.2023.23443.
[20] Nevoit G, Filyunova О, Kitura O, Mintser O, Potyazenko М, Bumblyte IA, Vainoras А. Biophotonics and reflexology: conceptualization of the role of biophotonic signaling. Fitoterapiia. Chasopys – Phytotherapy. Journal. 2024;3 (accepted for publication).
[21] Filyunova О, Nevoit G, Potyazenko М, Vainoras А. Bioelectronic Medicine for sports: justification of biophysical mechanisms and clinical feasibility of use. Fitoterapiia. Chasopys – Phytotherapy. 2023; 3: 15–18, https://doi.org/10.32782/2522-9680-2023-3-63.
[22] Ganzer PD, Sharma G. Opportunities and challenges for developing closed-loop bioelectronic medicines. Neural Regeneration Research. 2019;14(1):46–50. https://doi.org/10.4103/1673-5374.243697.
[23] Gibney S, Hicks JM, Robinson A, Jain A, Sanjuan-Alberte P, Rawson FJ. Toward nanobioelectronic medicine: Unlocking new applications using nanotechnology. Wiley Interdisciplinary Reviews Nanomedicine and Nanobiotechnology. 2021;13(3):e1693. https://doi.org/10.1002/wnan.1693.
[24] Kherson State University. Video lectures on the basis of educational and cultural HAB of Kherson State University within the framework of international cooperation. https://www.kspu.edu/About/Faculty/Medicine/InternationalActivity/resources.aspx#!/FileDownload.ashx/1.png?id=11f863a7-d8ed-4503-84c6-d24132eae009/0/. Accessed September 27, 2024.
[25] Nevoit G, Filyunova О, Kitura O, Mintser O, Potyazenko М, Bumblyte IA, Vainoras А. Biophotonics and reflexology: conceptualization of the role of biophotonic signaling. Phytotherapy Journal. 2024;3:62–78. https://doi.org/10.32782/2522-9680-2024-3-62.
[26] Nevoit G, Jaruševičius G, Filyunova O, Danylchenko S, Potyazhenko M, Mintser O, Bumblytė IA, Vainoras A. Magneto-electrochemical theory of metabolism: electromagnetic communication of cells and the role of the extracellular matrix. Biologija. 2025;1(71):163–178. https://doi.org/10.6001/biologija.2025.71.1.1.
[27] Paolis LD, Francini R, Davoli I, et al. Biophotons: A Hard Problem. Applied Sciences. 2024;14(13):5496. https://doi.org/10.3390/app14135496.
[28] Nevoit G, Landauskas M, McCarty R, et al. Schumann Resonances and the Human Body: Questions About Interactions, Problems and Prospects. Applied Sciences. 2025;15(1):449. https://doi.org/10.3390/app15010449.