Literature DB >> 33179821

Modulation of the Cell Membrane Potential and Intracellular Protein Transport by High Magnetic Fields.

Vitalii Zablotskii1, Tatyana Polyakova1, Alexandr Dejneka1.   

Abstract

To explore cellular responses to high magnetic fields (HMF), we present a model of the interactions of cells with a homogeneous HMF that accounts for the magnetic force exerted on paramagnetic/diamagnetic species. There are various chemical species inside a living cell, many of which may have large concentration gradients. Thus, when an HMF is applied to a cell, the concentration-gradient magnetic forces act on paramagnetic or diamagnetic species and can either assist or oppose large particle movement through the cytoplasm. We demonstrate possibilities for changing the machinery in living cells with HMFs and predict two new mechanisms for modulating cellular functions with HMFs via (i) changes in the membrane potential and (ii) magnetically assisted intracellular diffusiophoresis of large proteins. By deriving a generalized form for the Nernst equation, we find that an HMF can change the membrane potential of the cell and thus have a significant impact on the properties and biological functionality of cells. The elaborated model provides a universal framework encompassing current studies on controlling cell functions by high static magnetic fields. Bioelectromagnetics.
© 2020 Bioelectromagnetics Society. © 2020 Bioelectromagnetics Society.

Keywords:  cell responses to magnetic fields; diffusiophoresis; ion diffusion; magnetogenetics; membrane potential

Year:  2020        PMID: 33179821     DOI: 10.1002/bem.22309

Source DB:  PubMed          Journal:  Bioelectromagnetics        ISSN: 0197-8462            Impact factor:   2.010


  1 in total

1.  Effects of High Magnetic Fields on the Diffusion of Biologically Active Molecules.

Authors:  Vitalii Zablotskii; Tatyana Polyakova; Alexandr Dejneka
Journal:  Cells       Date:  2021-12-28       Impact factor: 6.600

  1 in total

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