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- W1874871483 abstract "Cell membrane has a unique feature of storing biological energies in a physiologically relevant environment. This study illustrates a capacitor model of biological cell membrane including DPPC structures. The electron density profile models, electron localization function (ELF) and local information entropy have been applied to study the interaction of proteins with lipid bilayers in the cell membrane. The quantum and coulomb blockade effects of different thicknesses in the membrane have also been specifically investigated. It has been exhibited the quantum effects can appear in a small region of the free space within the membrane thickness due to the number and type of phospholipid layers. In addition, from the viewpoint of quantum effects by Heisenberg rule, it is shown the quantum tunneling is allowed in some micro positions while it is forbidden in other forms of membrane capacitor systems. Due to the dynamical behavior of the cell membrane, its capacitance is not fixed which results a variable capacitor. In presence of the external fields through protein trance membrane or ions, charges exert forces that can influence the state of the cell membrane. This causes to appear the charge capacitive susceptibility that can resonate with self-induction of helical coils; the resonance of which is the main reason for various biological pulses." @default.
- W1874871483 created "2016-06-24" @default.
- W1874871483 creator A5018422073 @default.
- W1874871483 date "2015-12-01" @default.
- W1874871483 modified "2023-09-23" @default.
- W1874871483 title "Cell membrane causes the lipid bilayers to behave as variable capacitors: A resonance with self-induction of helical proteins" @default.
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- W1874871483 doi "https://doi.org/10.1016/j.bpc.2015.10.003" @default.
- W1874871483 hasPubMedId "https://pubmed.ncbi.nlm.nih.gov/26529673" @default.
- W1874871483 hasPublicationYear "2015" @default.
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