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Therapeutic Methods and Therapies TCIM
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1.
Bioelectromagnetics ; 42(1): 27-36, 2021 Jan.
Article in English | MEDLINE | ID: mdl-33179821

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. 2021;42:27-36. © 2020 Bioelectromagnetics Society.


Subject(s)
Magnetic Fields , Proteins , Biological Transport , Membrane Potentials , Protein Transport
2.
Cell Mol Life Sci ; 77(14): 2815-2838, 2020 Jul.
Article in English | MEDLINE | ID: mdl-31583425

ABSTRACT

Biological effects of high fluence low-power (HFLP) lasers have been reported for some time, yet the molecular mechanisms procuring cellular responses remain obscure. A better understanding of the effects of HFLP lasers on living cells will be instrumental for the development of new experimental and therapeutic strategies. Therefore, we investigated sub-cellular mechanisms involved in the laser interaction with human hepatic cell lines. We show that mitochondria serve as sub-cellular "sensor" and "effector" of laser light non-specific interactions with cells. We demonstrated that despite blue and red laser irradiation results in similar apoptotic death, cellular signaling and kinetic of biochemical responses are distinct. Based on our data, we concluded that blue laser irradiation inhibited cytochrome c oxidase activity in electron transport chain of mitochondria. Contrary, red laser triggered cytochrome c oxidase excessive activation. Moreover, we showed that Bcl-2 protein inhibited laser-induced toxicity by stabilizing mitochondria membrane potential. Thus, cells that either overexpress or have elevated levels of Bcl-2 are protected from laser-induced cytotoxicity. Our findings reveal the mechanism how HFLP laser irradiation interfere with cell homeostasis and underscore that such laser irradiation permits remote control of mitochondrial function in the absence of chemical or biological agents.


Subject(s)
Electron Transport Complex IV/genetics , Electron Transport/radiation effects , Low-Level Light Therapy , Phototherapy , Apoptosis/radiation effects , Cell Survival/genetics , Cell Survival/radiation effects , Electron Transport/genetics , Gene Expression Regulation/radiation effects , Hep G2 Cells , Humans , Membrane Potential, Mitochondrial/genetics , Membrane Potential, Mitochondrial/radiation effects , Mitochondria/genetics , Mitochondria/radiation effects , Mitochondrial Membranes/metabolism , Mitochondrial Membranes/radiation effects , Oxidation-Reduction/radiation effects , Reactive Oxygen Species/metabolism
3.
Sci Rep ; 6: 37407, 2016 11 18.
Article in English | MEDLINE | ID: mdl-27857227

ABSTRACT

The biological effects of high-gradient magnetic fields (HGMFs) have steadily gained the increased attention of researchers from different disciplines, such as cell biology, cell therapy, targeted stem cell delivery and nanomedicine. We present a theoretical framework towards a fundamental understanding of the effects of HGMFs on intracellular processes, highlighting new directions for the study of living cell machinery: changing the probability of ion-channel on/off switching events by membrane magneto-mechanical stress, suppression of cell growth by magnetic pressure, magnetically induced cell division and cell reprograming, and forced migration of membrane receptor proteins. By deriving a generalized form for the Nernst equation, we find that a relatively small magnetic field (approximately 1 T) with a large gradient (up to 1 GT/m) can significantly change the membrane potential of the cell and thus have a significant impact on not only the properties and biological functionality of cells but also cell fate.


Subject(s)
Electromagnetic Fields , Magnetic Field Therapy , Stem Cells/radiation effects , Humans , Membrane Potentials/radiation effects , Models, Theoretical , Nanomedicine
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