- Access by Xinjiang University
Quantum nanorotator in the hypomagnetic field: Implications for magnetobiology
Phys. Rev. E 114, 014406 – Published 13 July, 2026
DOI: https://doi.org/10.1103/8wry-pznb
Abstract
A mechanism for the biological effects of the hypomagnetic field is proposed, based on the rotational motion of a molecule as a whole within a cavity in an enzyme. It has been shown previously that a molecular rotator about 1 nm in size can have a decoherence time of up to tens of milliseconds. On shorter timescales, the nanorotator exists in a state of quantum superposition and exhibits interference effects. The statics and dynamics of the nanorotator in a magnetic field are analyzed using the Schrödinger and Liouville–von Neumann equations, taking into account chemical kinetics and thermal relaxation. It is demonstrated that the small-scale interference of the nanorotator is highly sensitive to weak magnetic fields. The quantum nanorotator shows magnetic effects ranging from a few to several tens of percent over a wide range of realistic decoherence rates. If the nanorotator constitutes an adequate model of rotating amino acid residues in the active sites of certain enzymes involved in protein synthesis, then weak magnetic fields can exert significant biological effects, leading to the observed phenomena.
Physics Subject Headings (PhySH)
Article Text
References (14)
- A. Buchachenko, Magneto-Biology and Medicine (Nova Science, New York, 2014).
- P. J. Hore and H. Mouritsen, The radical-pair mechanism of magnetoreception, Annu. Rev. Biophys. 45, 299 (2016).
- V. N. Binhi, Nonspecific magnetic biological effects: A model assuming the spin-orbit coupling, J. Chem. Phys. 151, 204101 (2019).
- D. R. Kattnig, I. Solov'yov, and P. J. Hore, Electron spin relaxation in cryptochrome-based magnetoreception, Phys. Chem. Chem. Phys. 18, 12443 (2016).
- V. Binhi, Magnetic effects in biology: Crucial role of quantum coherence in the radical pair mechanism, Phys. Rev. E 112, 014409 (2025).
- V. N. Binhi, Magnetic biological effect: Quantum constraints, Biophysics 70, 353 (2025).
- V. N. Binhi, The radical-pair mechanism in magnetobiology: State of the art, Phys. Usp. 68, 1242 (2025).
- V. N. Binhi, Statistical amplification of the effects of weak magnetic fields in cellular translation, Cells 12, 724 (2023).
- V. N. Binhi and A. V. Savin, Molecular gyroscopes and biological effects of weak extremely low-frequency magnetic fields, Phys. Rev. E 65, 051912 (2002).
- D. Voet, J. G. Voet, and C. W. Pratt, Fundamentals of Biochemistry: Life at the Molecular Level, 4th ed. (Wiley, Hoboken, 2013), p. 984.
- V. N. Binhi, Magnetobiology: Underlying Physical Problems (Academic Press, San Diego, 2002).
- S. Olariu and I. I. Popescu, The quantum effects of electromagnetic fluxes, Rev. Mod. Phys. 57, 339 (1985).
- C. Waldron, R. Jund, and F. Lacroute, The elongation rate of proteins of different molecular weight classes in yeast, FEBS Lett. 46, 11 (1974).
- S. K. Dhiman, F. Wu, and P. Galland, Effects of weak static magnetic fields on the development of seedlings of Arabidopsis thaliana, Protoplasma 260, 767 (2023).