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On the steady-state assumption and its application to the rotating disk voltammetry of adsorbed enzymes.

作者信息

Honeychurch Michael J, Bernhardt Paul V

机构信息

Centre for Metals in Biology, Department of Chemistry, University of Queensland, Brisbane 4072, Australia.

出版信息

J Phys Chem B. 2005 Mar 31;109(12):5766-73. doi: 10.1021/jp0454570.

Abstract

Rotating disk voltammetry is routinely used to study electrochemically driven enzyme catalysis because of the assumption that the method produces a steady-state system. This assumption is based on the sigmoidal shape of the voltammograms. We have introduced an electrochemical adaptation of the King-Altman method to simulate voltammograms in which the enzyme catalysis, within an immobilized enzyme layer, is steady-state. This method is readily adaptable to any mechanism and provides a readily programmable means of obtaining closed form analytical equations for a steady-state system. The steady-state simulations are compared to fully implicit finite difference (FIFD) simulations carried out without any steady-state assumptions. On the basis of our simulations, we conclude that, under typical experimental conditions, steady-state enzyme catalysis is unlikely to occur within electrode-immobilized enzyme layers and that typically sigmoidal rotating disk voltammograms merely reflect a mass transfer steady state as opposed to a true steady state of enzyme intermediates at each potential.

摘要

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