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Revealing redox isomerism in trichromium imides by anomalous diffraction

In polynuclear biological active sites, multiple electrons are needed for turnover, and the distribution of these electrons among the metal sites is affected by the structure of the active site. However, the study of the interplay between structure and redox distribution is difficult not only in bio...

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Autores principales: Bartholomew, Amymarie K., Musgrave, Rebecca A., Anderton, Kevin J., Juda, Cristin E., Dong, Yuyang, Bu, Wei, Wang, Su-Yin, Chen, Yu-Sheng, Betley, Theodore A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8654065/
https://www.ncbi.nlm.nih.gov/pubmed/35003606
http://dx.doi.org/10.1039/d1sc04819h
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author Bartholomew, Amymarie K.
Musgrave, Rebecca A.
Anderton, Kevin J.
Juda, Cristin E.
Dong, Yuyang
Bu, Wei
Wang, Su-Yin
Chen, Yu-Sheng
Betley, Theodore A.
author_facet Bartholomew, Amymarie K.
Musgrave, Rebecca A.
Anderton, Kevin J.
Juda, Cristin E.
Dong, Yuyang
Bu, Wei
Wang, Su-Yin
Chen, Yu-Sheng
Betley, Theodore A.
author_sort Bartholomew, Amymarie K.
collection PubMed
description In polynuclear biological active sites, multiple electrons are needed for turnover, and the distribution of these electrons among the metal sites is affected by the structure of the active site. However, the study of the interplay between structure and redox distribution is difficult not only in biological systems but also in synthetic polynuclear clusters since most redox changes produce only one thermodynamically stable product. Here, the unusual chemistry of a sterically hindered trichromium complex allowed us to probe the relationship between structural and redox isomerism. Two structurally isomeric trichromium imides were isolated: asymmetric terminal imide ((tbs)L)Cr(3)(NDipp) and symmetric, μ(3)-bridging imide ((tbs)L)Cr(3)(μ(3)–NBn) (((tbs)L)(6−) = (1,3,5-C(6)H(9)(NC(6)H(4)-o-NSi(t)BuMe(2))(3))(6−)). Along with the homovalent isocyanide adduct ((tbs)L)Cr(3)(CNBn) and the bisimide ((tbs)L)Cr(3)(μ(3)–NPh)(NPh), both imide isomers were examined by multiple-wavelength anomalous diffraction (MAD) to determine the redox load distribution by the free refinement of atomic scattering factors. Despite their compositional similarities, the bridging imide shows uniform oxidation of all three Cr sites while the terminal imide shows oxidation at only two Cr sites. Further oxidation from the bridging imide to the bisimide is only borne at the Cr site bound to the second, terminal imido fragment. Thus, depending on the structural motifs present in each [Cr(3)] complex, MAD revealed complete localization of oxidation, partial localization, and complete delocalization, all supported by the same hexadentate ligand scaffold.
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spelling pubmed-86540652022-01-06 Revealing redox isomerism in trichromium imides by anomalous diffraction Bartholomew, Amymarie K. Musgrave, Rebecca A. Anderton, Kevin J. Juda, Cristin E. Dong, Yuyang Bu, Wei Wang, Su-Yin Chen, Yu-Sheng Betley, Theodore A. Chem Sci Chemistry In polynuclear biological active sites, multiple electrons are needed for turnover, and the distribution of these electrons among the metal sites is affected by the structure of the active site. However, the study of the interplay between structure and redox distribution is difficult not only in biological systems but also in synthetic polynuclear clusters since most redox changes produce only one thermodynamically stable product. Here, the unusual chemistry of a sterically hindered trichromium complex allowed us to probe the relationship between structural and redox isomerism. Two structurally isomeric trichromium imides were isolated: asymmetric terminal imide ((tbs)L)Cr(3)(NDipp) and symmetric, μ(3)-bridging imide ((tbs)L)Cr(3)(μ(3)–NBn) (((tbs)L)(6−) = (1,3,5-C(6)H(9)(NC(6)H(4)-o-NSi(t)BuMe(2))(3))(6−)). Along with the homovalent isocyanide adduct ((tbs)L)Cr(3)(CNBn) and the bisimide ((tbs)L)Cr(3)(μ(3)–NPh)(NPh), both imide isomers were examined by multiple-wavelength anomalous diffraction (MAD) to determine the redox load distribution by the free refinement of atomic scattering factors. Despite their compositional similarities, the bridging imide shows uniform oxidation of all three Cr sites while the terminal imide shows oxidation at only two Cr sites. Further oxidation from the bridging imide to the bisimide is only borne at the Cr site bound to the second, terminal imido fragment. Thus, depending on the structural motifs present in each [Cr(3)] complex, MAD revealed complete localization of oxidation, partial localization, and complete delocalization, all supported by the same hexadentate ligand scaffold. The Royal Society of Chemistry 2021-11-03 /pmc/articles/PMC8654065/ /pubmed/35003606 http://dx.doi.org/10.1039/d1sc04819h Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Bartholomew, Amymarie K.
Musgrave, Rebecca A.
Anderton, Kevin J.
Juda, Cristin E.
Dong, Yuyang
Bu, Wei
Wang, Su-Yin
Chen, Yu-Sheng
Betley, Theodore A.
Revealing redox isomerism in trichromium imides by anomalous diffraction
title Revealing redox isomerism in trichromium imides by anomalous diffraction
title_full Revealing redox isomerism in trichromium imides by anomalous diffraction
title_fullStr Revealing redox isomerism in trichromium imides by anomalous diffraction
title_full_unstemmed Revealing redox isomerism in trichromium imides by anomalous diffraction
title_short Revealing redox isomerism in trichromium imides by anomalous diffraction
title_sort revealing redox isomerism in trichromium imides by anomalous diffraction
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8654065/
https://www.ncbi.nlm.nih.gov/pubmed/35003606
http://dx.doi.org/10.1039/d1sc04819h
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