Oxygen-Atom Transfer by a Naked Manganese(V)-Oxo-Porphyrin Complex Reveals Axial Ligand Effect

2009 ◽  
Vol 15 (32) ◽  
pp. 7863-7866 ◽  
Author(s):  
Maria Elisa Crestoni ◽  
Simonetta Fornarini ◽  
Francesco Lanucara
2020 ◽  
Vol 21 (19) ◽  
pp. 7133
Author(s):  
Calvin W. Z. Lee ◽  
M. Qadri E. Mubarak ◽  
Anthony P. Green ◽  
Sam P. de Visser

Heme peroxidases have important functions in nature related to the detoxification of H2O2. They generally undergo a catalytic cycle where, in the first stage, the iron(III)–heme–H2O2 complex is converted into an iron(IV)–oxo–heme cation radical species called Compound I. Cytochrome c peroxidase Compound I has a unique electronic configuration among heme enzymes where a metal-based biradical is coupled to a protein radical on a nearby Trp residue. Recent work using the engineered Nδ-methyl histidine-ligated cytochrome c peroxidase highlighted changes in spectroscopic and catalytic properties upon axial ligand substitution. To understand the axial ligand effect on structure and reactivity of peroxidases and their axially Nδ-methyl histidine engineered forms, we did a computational study. We created active site cluster models of various sizes as mimics of horseradish peroxidase and cytochrome c peroxidase Compound I. Subsequently, we performed density functional theory studies on the structure and reactivity of these complexes with a model substrate (styrene). Thus, the work shows that the Nδ-methyl histidine group has little effect on the electronic configuration and structure of Compound I and little changes in bond lengths and the same orbital occupation is obtained. However, the Nδ-methyl histidine modification impacts electron transfer processes due to a change in the reduction potential and thereby influences reactivity patterns for oxygen atom transfer. As such, the substitution of the axial histidine by Nδ-methyl histidine in peroxidases slows down oxygen atom transfer to substrates and makes Compound I a weaker oxidant. These studies are in line with experimental work on Nδ-methyl histidine-ligated cytochrome c peroxidases and highlight how the hydrogen bonding network in the second coordination sphere has a major impact on the function and properties of the enzyme.


2019 ◽  
Vol 58 (3) ◽  
pp. 1862-1876 ◽  
Author(s):  
Reena Singh ◽  
Gaurab Ganguly ◽  
Sergey O. Malinkin ◽  
Serhiy Demeshko ◽  
Franc Meyer ◽  
...  

Polyhedron ◽  
2021 ◽  
pp. 115234
Author(s):  
Md. Kamal Hossain ◽  
Jörg A. Schachner ◽  
Matti Haukka ◽  
Michael G. Richmond ◽  
Nadia C. Mösch-Zanetti ◽  
...  

Author(s):  
Leila G. Ranis ◽  
Jacqueline Gianino ◽  
Justin M. Hoffman ◽  
Seth N. Brown

Eight-coordinate MoO2(DOPOQ)2 can donate two oxygen atoms to substrates such as phosphines in a four-electron nonclassical oxygen atom transfer reaction.


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