When a redox enzyme or synthetic catalyst is interfaced with an electrode, the electrochemical response depends on the details of the catalytic cycle. Here we focus on the steady-state catalytic waveshape of enzymes such as formate dehydrogenase (2e-/1H+), hydrogenases (2e-/2H+) and other bidirectional molecular catalysts that can be adsorbed on, and undergo direct electron transfer with an electrode. We seek to examine the relations between the dependence on pH of the waveshape, the sequence of events in the catalytic cycle, and the properties of the catalytic intermediates (their reduction potentials and pKa's). Discussing the interpretation of the dependence on pH of the limiting currents and catalytic potentials in various simple situations leads us to introduce the concept of “catalytic pKa”. The reasoning is general and could be used in relation to any bidirectional two-electron catalytic cycle. Understanding what defines and tunes the catalytic potentials will be crucial for the design of reversible catalysts, which operate at a fast rate in either direction in response to even a small overpotential.

Fasano, A., Fourmond, V., Leger, C. (2024). Kinetic modeling of 2e−/1H+ and 2e−/2H+ bidirectional catalytic cycles. BIOELECTROCHEMISTRY, 155(February 2024) [10.1016/j.bioelechem.2023.108511].

Kinetic modeling of 2e−/1H+ and 2e−/2H+ bidirectional catalytic cycles

Fasano A.
Primo
;
2024

Abstract

When a redox enzyme or synthetic catalyst is interfaced with an electrode, the electrochemical response depends on the details of the catalytic cycle. Here we focus on the steady-state catalytic waveshape of enzymes such as formate dehydrogenase (2e-/1H+), hydrogenases (2e-/2H+) and other bidirectional molecular catalysts that can be adsorbed on, and undergo direct electron transfer with an electrode. We seek to examine the relations between the dependence on pH of the waveshape, the sequence of events in the catalytic cycle, and the properties of the catalytic intermediates (their reduction potentials and pKa's). Discussing the interpretation of the dependence on pH of the limiting currents and catalytic potentials in various simple situations leads us to introduce the concept of “catalytic pKa”. The reasoning is general and could be used in relation to any bidirectional two-electron catalytic cycle. Understanding what defines and tunes the catalytic potentials will be crucial for the design of reversible catalysts, which operate at a fast rate in either direction in response to even a small overpotential.
Articolo in rivista - Articolo scientifico
Bidirectional catalysis; Electrochemical kinetics; Protein film voltammetry;
English
21-set-2023
2024
155
February 2024
108511
reserved
Fasano, A., Fourmond, V., Leger, C. (2024). Kinetic modeling of 2e−/1H+ and 2e−/2H+ bidirectional catalytic cycles. BIOELECTROCHEMISTRY, 155(February 2024) [10.1016/j.bioelechem.2023.108511].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10281/584082
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