cycle flux algebra for ion and water flux through the kcsa channel single-file pore links microscopic trajectories and macroscopic observables循环通量代数对离子和水通量构成妨碍,所有参加kcsa通道一路纵队孔隙微观轨迹和宏观可见的链接.pdf
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Cycle Flux Algebra for Ion and Water Flux through the
KcsA Channel Single-File Pore Links Microscopic
Trajectories and Macroscopic Observables
Shigetoshi Oiki*, Masayuki Iwamoto, Takashi Sumikama
Department of Molecular Physiology and Biophysics, University of Fukui Faculty of Medical Sciences, Fukui, Japan
Abstract
In narrow pore ion channels, ions and water molecules diffuse in a single-file manner and cannot pass each other. Under such
constraints, ion and water fluxes are coupled, leading to experimentally observable phenomena such as the streaming
potential. Analysis of this coupled flux would provide unprecedented insights into the mechanism of permeation. In this study,
ion and water permeation through the KcsA potassium channel was the focus, for which an eight-state discrete-state Markov
model has been proposed based on the crystal structure, exhibiting four ion-binding sites. Random transitions on the model
lead to the generation of the net flux. Here we introduced the concept of cycle flux to derive exact solutions of experimental
observables from the permeation model. There are multiple cyclic paths on the model, and random transitions complete the
cycles. The rate of cycle completion is called the cycle flux. The net flux is generated by a combination of cyclic paths with their
own cycle flux. T.L. Hill developed a graphical method of exact solutions for the cycle flux. This method was extended to
calculate one-way cycle fluxes of the KcsA channel. By assigning the stoichiometric numbers for ion and water transfer to each
cycle, we established a method to calculate the water-ion coupling ratio (CRw-i) through cycle flux algebra. These calculations
predicted that CRw-i would increase at low potassium concentrations. One envisions an intuitive picture of permeation as
random transitions among cyclic paths, and the relative contributions of the cycle fl
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