DocumentCode :
1240048
Title :
Spatial Distribution of the Electric Potential From Photosystem I Reaction Centers in Lipid Vesicles
Author :
Pennisi, Cristian P. ; Greenbaum, Elias ; Yoshida, Ken
Author_Institution :
Center for Sensory-Motor Interaction, Aalborg Univ., Aalborg
Volume :
7
Issue :
2
fYear :
2008
fDate :
6/1/2008 12:00:00 AM
Firstpage :
164
Lastpage :
171
Abstract :
Photosynthetic reaction centers are integral membrane complexes that produce a net transmembrane charge separation in response to light. The Photosystem I (PSI) complex is a thoroughly studied reaction center that has been proposed as a nanoscale photovoltaic structure in diverse applications, including activation of excitable cells by triggering of voltage-gated ion channels. An electrostatic model of a spherical lipid vesicle embedded with PSI and suspended in an aqueous medium is presented. The distribution of the electric potential is obtained by solving the nonlinear Poisson-Boltzmann equation with the finite-element method. The model predicts a maximum potential difference of 1.3 V between charges. This value depends mostly on the intrinsic dielectric constants of the reaction center and distance between charges. However, the potential distribution near the reaction center depends on the ionic strength of the aqueous medium. When the ionic strength is zero, the vesicle develops a transmembrane potential that increases linearly with the density of reaction centers. When the ionic strength increases, this potential difference approaches to zero. The main results of the simulations are consistent with previously reported experimental data. Based on the presented results, the potential application of PSI to light activation of voltage-gated ion channels is discussed.
Keywords :
Boltzmann equation; Poisson equation; biochemistry; bioelectric potentials; biomembrane transport; finite element analysis; lipid bilayers; molecular biophysics; nonlinear equations; photosynthesis; aqueous medium; electric potential distribution; finite-element method; integral membrane complex; intrinsic dielectric constant; ionic strength; lipid vesicle; nanoscale photovoltaic structure; nonlinear Poisson-Boltzmann equation; photosynthetic reaction center; photosystem I reaction center; spatial distribution; transmembrane charge separation; transmembrane potential; voltage-gated ion channel; Biomembranes; Electric potential; Electrostatics; Finite element methods; Lipidomics; Nanostructures; Photovoltaic systems; Poisson equations; Solar power generation; Voltage; Finite-element method; Poisson–Boltzmann equation; molecular electronics; photosynthetic reaction centers; Computer Simulation; Electromagnetic Fields; Electrostatics; Lipid Bilayers; Models, Chemical; Photosystem I Protein Complex; Unilamellar Liposomes;
fLanguage :
English
Journal_Title :
NanoBioscience, IEEE Transactions on
Publisher :
ieee
ISSN :
1536-1241
Type :
jour
DOI :
10.1109/TNB.2008.2000748
Filename :
4537997
Link To Document :
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