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Impacts of external electric fields on the permeation of glycerol and water molecules through aquaglyceroporin-7: molecular dynamics simulation approach

Journal: European Physical Journal E (12928941)Year: January 2023Volume: 46Issue:
Rahimi Z.Lohrasebi A.a
DOI:10.1140/epje/s10189-023-00261-2Language: English

Abstract

The aquaglyceroporin-7 (AQP7) protein channels facilitate the permeation of glycerol and water molecules through cell membranes by passive diffusion and play a crucial role in cell physiology. Considering the wide-spirit usage of radiofrequency electromagnetic fields in our daily life, in this study, the effects of constant and GHz electric fields were investigated on the dynamics of glycerol and water molecules inside the AQP7. To this end, four different molecular simulation groups were carried out in the absence and presence of electric fields. The results reveal that the free energy profile of the glycerol permeation inside the channel is reduced in the presence of the field of 0.2 mV/nm and the oscillating field of 10 GHz. In addition, exposing the channel to the electric field of 0.2 mV/nm assisted the water transport through the channel with no considerable effect on channel stability. These observations provide a framework for understanding how such fields could alter normal operation of protein channels, which may lead to disease beginning or being used in disease treatment. Graphical abstract: [Figure not available: see fulltext.]. © 2023, The Author(s), under exclusive licence to EDP Sciences, SIF and Springer-Verlag GmbH Germany, part of Springer Nature.


Author Keywords

Other Keywords

AquaglyceroporinsBiological TransportGlycerolMolecular Dynamics SimulationWaterCytologyDiseasesElectric fieldsElectromagnetic fieldsFree energyMoleculesProteinsaquaglyceroporinCell physiologyDaily livesDynamics simulationExternal electric fieldMolecular simulationsPassive diffusionsProtein channelsRadiofrequency electromagnetic fieldSimulation approachWater moleculemetabolismmolecular dynamicstransport at the cellular level