One‐ and Two‐Electron Reductions in MiniSOG and their Implication in Catalysis**

Author:

Azpitarte Oksana12,Zudaire Ane12,Uranga Jon3,Lopez Xabier12ORCID,Salassa Luca124ORCID,Formoso Elena25ORCID,Rezabal Elixabete12ORCID

Affiliation:

1. Kimika Fakultatea Euskal Herriko Unibertsitatea (UPV/EHU) 20018 Donostia Euskadi Spain

2. Donostia International Physics Center (DIPC) 20018 Donostia Euskadi Spain

3. Institute for Physical Chemistry Tammanstraße 6 37077 Göttingen Germany

4. Ikerbasque Basque Foundation for Science 48011 Bilbao Euskadi Spain

5. Farmazia Fakultatea Euskal Herriko Unibertsitatea (UPV/EHU) 01006 Gasteiz Euskadi Spain

Abstract

AbstractThe unconventional bioorthogonal catalytic activation of anticancer metal complexes by flavin and flavoproteins photocatalysis has been reported recently. The reactivity is based on a two‐electron redox reaction of the photoactivated flavin. Furthermore, when it comes to flavoproteins, we recently reported that site mutagenesis can modulate and improve this catalytic activity in the mini Singlet Oxygen Generator protein (SOG). In this paper, we analyze the reductive half‐reaction in different miniSOG environments by means of density functional theory. We report that the redox properties of flavin and the resulting reactivity of miniSOG is modulated by specific mutations, which is in line with the experimental results in the literature. This modulation can be attributed to the fundamental physicochemical properties of the system, specifically (i) the competition of single and double reduction of the flavin and (ii) the probability of electron transfer from the protein to the flavin. These factors are ultimately linked to the stability of flavin‘s electron‐accepting orbitals in different coordination modes.

Publisher

Wiley

Subject

Physical and Theoretical Chemistry,Atomic and Molecular Physics, and Optics

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