Dissemin is shutting down on January 1st, 2025

Published in

F1000Research, F1000Research, (7), p. 1468, 2021

DOI: 10.12688/f1000research.16169.3

F1000Research, F1000Research, (7), p. 1468, 2018

DOI: 10.12688/f1000research.16169.2

F1000Research, F1000Research, (7), p. 1468, 2018

DOI: 10.12688/f1000research.16169.1

Links

Tools

Export citation

Search in Google Scholar

A thermodynamic description for physiological transmembrane transport

Journal article published in 2018 by Marco Arieli Herrera-Valdez ORCID
This paper is made freely available by the publisher.
This paper is made freely available by the publisher.

Full text: Download

Red circle
Preprint: archiving forbidden
Red circle
Postprint: archiving forbidden
Green circle
Published version: archiving allowed
Data provided by SHERPA/RoMEO

Abstract

A general formulation for both passive and active transmembrane transport is derived from basic thermodynamical principles. The derivation takes into account the energy required for the motion of molecules across membranes, and includes the possibility of modeling asymmetric flow. Transmembrane currents can then be described by the general model in the case of electrogenic flow. As it is desirable in new models, it is possible to derive other well known expressions for transmembrane currents as particular cases of the general formulation. For instance, the conductance-based formulation for current turns out to be a linear approximation of the general formula for current. Also, under suitable assumptions, other formulas for current based on electrodiffusion, like the constant field approximation by Goldman, can also be recovered from the general formulation. The applicability of the general formulations is illustrated first with fits to existing data, and after, with models of transmembrane potential dynamics for pacemaking cardiocytes and neurons. The general formulations presented here provide a common ground for the biophysical study of physiological phenomena that depend on transmembrane transport.