Disease Transmission by Spin Supercurrent

Main Article Content

Liudmila B. boldyreva

Abstract

At present only one way of transmission of disease from an ill body organ to a healthy body organ is known: by means of living pathogenic microorganisms. It is shown in this work that there exists one more way of disease transmission from an ill body organ to a healthy one: by means of spin supercurrent. Spin supercurrents may not only play the role of microorganisms in transmission of diseases but transmit as well the diseases that are absolutely non-contagious from the standpoint of medical science. It is remarkable that spin supercurrent may transmit the peculiars of structure of DNA from one biological system (BS) to another. The effect of spin supercurrent is especially pronounced if the interacting body organs have some common characteristics, for example, in the case of organs of identical twins.

Keywords: medicine, biology, disease transmission spin supercurrent, virtual photon, quantum mechanics

Article Details

How to Cite
BOLDYREVA, Liudmila B.. Disease Transmission by Spin Supercurrent. Medical Research Archives, [S.l.], v. 7, n. 10, oct. 2019. ISSN 2375-1924. Available at: <https://esmed.org/MRA/mra/article/view/1981>. Date accessed: 20 apr. 2024. doi: https://doi.org/10.18103/mra.v7i10.1981.
Section
Research Articles

References

1. Borovic-Romanov AS, Bunkov YuM, Dmitriev VV, Mukharskii YuM, Sergatskov DA. 1989. Investigation of Spin Supercurrents in 3He-B, Phys Rev Lett 62(14):1631.

2. Bunkov YuM. 2009. Spin Superfluidity and Coherent Spin Precession. J Phys Condens Matter, 21(16):164201.

3. Dmitriev VV, Fomin IA. 2009. Homogeneously precessing domain in 3He-B: formation and properties. Bunkov YuM. 2009. Spin Superfluidity and Coherent Spin Precession. J Phys Condens Matter 21(16):164202.

4. Mandl F, Shaw G. 1984/2002. Quantum Field Theory. John Wiley & Sons, Chichester UK, revised edition, 56. 176.

5. Boldyreva LB. 2018. Spin System of Physical Vacuum as a Source of Energy. International Journal of Physics, 6(4):128-138. DOI:10.12691/ijp-6-4-5.

6. Boldyreva LB. 2017. Theory of Virtual Particles as an Alternative to Special Relativity. International Journal of Physics, 5(4):141-146. DOI:10.12691/ijp-5-3-1. http://pubs.sciepub.com/ijp/5/4/6/.

7. Zhao X, Striolo A, Cummings PT. 2005. C60 binds to and deforms nucleotides. Biophys J. 89:3856-3862.

8. Nanjwade BK, Bechra HM, Derkara GK, Manvia FV, Nanjwade VK. 2009. Dendrimers: emerging polymers for drug-delivery systems. Eur J Pharm Scie. 38(3):185–196.

9. Boldyreva LB. 2014. The Physical Aspect of the Effects of Metal Nanoparticles on Biological Systems. Spin Supercurrents. Nanomaterials and Nanosciences, 2(issue 1).

10. Born M. 1962. Einstein’s Theory of Relativity. Dover Publications, New York.

11. Einstein A, Podolsky B, Rosen N. 1935. Can quantum-mechanical description of physical reality be considered complete? Phys Rev, 47:777.

12. Klyshko DN. 1994. Quantum optics: quantum, classical, and metaphysical aspect. Physics Uspekhi, 37:1097–1122.

13. Boldyreva LB. 2014. Quantum correlations–Spin supercurrents. Int J Quantum Inf, 12(1):1450007 (13 pages).

14. Boldyreva LB. 2019. Spin supercurrent in phenomena of quantum non-locality (quantum correlations, magnetic vector potential) and in near-field antenna effect. Journal of modern physics, 10:128-144, http://www.script.org./journal/jmp.

15. Ji-Gang, et al. 2017. Ground-to-satellite quantum teleportation. Nature, 549:70-73.

16. Tyagotin YuV. 1993. Communication delivered at the Transregional Scientific Conference Problems of Biofield. A.S. Popov Scientific and Technical Society, Rostov-Yaroslavsky, Russia.

17. Chirag M. Lakhani, et al. 2019. Repurposing large health insurance claims data to estimate genetic and environmental contributions in 560 phenotypes. Nat Gen, 51:327–334.

18. Bellavite P, Signorine A. 2002. Emerging Science of Homeopathy. North Atlantic Books, Berkeley, California, 6-9.

19. Boldyreva LB. 2011. An analogy between effects of ultra-low doses of biologically active substances on biological objects and properties of spin supercurrents in superfluid 3He-B. Homeopathy. 100(issue 3):187-193, doi: 10.1016/j.homp.2010.08.007.

20. Fröhlich H. 1988. Theoretical Physics and Biology. In: Fröhlich H. (ed.) Biological Coherence and Response to External Stimuli. Springer-Verlag Berlin: Heidelberg, 1-24.