Time-Independent Methodology to Access Michaelis-Menten Constant by Exploring Electrochemical-Catalytic Mechanism in Protein-Film Cyclic Staircase Voltammetry
Не зависящая от времени методология определения константы Михаэлиса–Ментен посредством исследования электрохимико-каталитического механизма при циклической ступенчатой вольтамперометрии белковой плёнки
2018-01-01
SCID: 54.1/jd27bzfe
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Michaelis-Menten constantcyclic staircase voltammetryelectrochemical-catalytic mechanismlimiting catalytic currentprotein-film voltammetry
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Abstract (AI)
Protein-film voltammetry is recognized as a very efficient tool in mechanistic enzymology, but it is also seen as a relevant approach to gain thermodynamic and kinetic information related to the redox chemistry of many enzymes. This technique requires a small amount of redox enzyme, whose molecules form monomolecular film on the working electrode surface. In this paper we present a simple and timeindependent cyclo-voltammetric method for the determination of kinetics of the chemical step of an electrochemical-catalytic (EC') mechanism in protein-film scenario. Theoretical results of a surface EC' mechanism show that the limiting cyclo-voltammetric catalytic current, measured at large overpotentials, depends solely on the rate of the chemical regenerative reaction. At large overpotentials, the limiting current of the steady-state cyclic voltammograms is independent on all kinetics and thermodynamic parameters related to the electrode reaction of adsorbed enzyme. The approach proposed relies on the dependence of the magnitude of limiting current of the experimental cyclic steady-state voltammograms as a function of the substrate concentration.
Key Findings
1
A simple time-independent cyclic voltammetric method is introduced to determine the chemical-step kinetics of an electrochemical-catalytic (EC′) mechanism in protein-film systems.
2
At large overpotentials, the steady-state cyclic voltammetric limiting current is independent of the kinetic and thermodynamic parameters governing the adsorbed enzyme’s electrode reaction.
3
For a surface EC′ mechanism, the limiting catalytic current at large overpotentials depends solely on the rate of the chemical regenerative reaction.
4
The approach requires only a small amount of redox enzyme immobilized as a monomolecular film on the working electrode.
5
The method determines kinetics by analyzing how the limiting current of steady-state cyclic voltammograms varies with substrate concentration.
Research Object
Redox enzyme monolayer films on an electrode undergoing electrochemical-catalytic (EC′) reactions
Research Subject
Determination of the chemical regenerative reaction kinetics, specifically the Michaelis–Menten constant, from limiting catalytic current dependence on substrate concentration
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2018-01-01
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