DocumentCode :
1176203
Title :
A simplified model for V-ATPase H+ extrusion
Author :
Luo, Chuan ; Clark, John W., Jr. ; Heming, Thomas A. ; Bidani, Akhil
Author_Institution :
Dept. of Electr. & Comput. Eng., Rice Univ., Houston, TX, USA
Volume :
3
Issue :
4
fYear :
2004
Firstpage :
257
Lastpage :
264
Abstract :
An analytical model of V-type H+-translocating ATPase (V-ATPase) was developed based on an approximation to the mechanochemical model of Grabe et al. (Biophys. J., pp. 2798-2813, vol. 78, 2000). Grabe\´s work utilizes structural information and physiological assumptions to construct a detailed mechanochemical model of the V-ATPase. Due to the complexity of their model, it does not give a readily usable mathematical expression for the V-ATPase current. Based on their analysis of the structure of the proton pump, we develop a two-compartment model of the V-ATPase, which contains a membrane "half-channel" for proton translocation separated by a hydrophilic strip and a hydrophobic wall from the cytoplasm. Using the Langevin equation to describe proton transport across the membrane, we simplify the model based on their assumptions on the molecular structure of the pump and arrive at a general form of solution to the proton pump flux driven by ATP hydrolysis based on assumptions on the physiological properties of the strip and the wall, as well as the two fluid compartments. In this process of simplification, we explicitly relate V-ATPase structure, stoichiometry, pump efficiency, and ATP hydrolysis energy to the active pump current. The simplified model is used to provide model-generated approximations to measured data from a variety of laboratories. In addition, it provides a very compact characterization of V-ATPase, which can be used as a proton extruder in a variety of different cell membranes, as well as in the membranes of intracellular organelles.
Keywords :
biochemistry; bioelectric phenomena; biomembrane transport; molecular biophysics; physiological models; proteins; ATP hydrolysis; H; Langevin equation; V-ATPase H/sup +/ extrusion; V-type H/sup +/-translocating ATPase; active pump current; cell membranes; cytoplasm; intracellular organelles; mechanochemical model; membrane half-channel; proton pump; proton translocation; pump molecular structure; two-compartment V-ATPase model; Biochemistry; Biomembranes; Couplings; Extracellular; Micromotors; Plasma measurements; Protons; Rotors; Stators; Torque; Electrophysiology; mechanochemstry; molecular motors; proton extrusion; Biological Transport, Active; Computer Simulation; Models, Biological; Models, Chemical; Molecular Motor Proteins; Proton Pumps; Protons; Vacuolar Proton-Translocating ATPases;
fLanguage :
English
Journal_Title :
NanoBioscience, IEEE Transactions on
Publisher :
ieee
ISSN :
1536-1241
Type :
jour
DOI :
10.1109/TNB.2004.837905
Filename :
1363984
Link To Document :
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