Cargando…

An Asymmetrically Substituted Aliphatic Bis-Dithiolene Mono-Oxido Molybdenum(IV) Complex With Ester and Alcohol Functions as Structural and Functional Active Site Model of Molybdoenzymes

A Mo(IV) mono-oxido bis-dithiolene complex, [MoO(mohdt)(2)](2−) (mohdt = 1-methoxy-1-oxo-4-hydroxy-but-2-ene-2,3-bis-thiolate) was synthesized as a structural and functional model for molybdenum oxidoreductase enzymes of the DMSO reductase family. It was comprehensively characterized by inter alia v...

Descripción completa

Detalles Bibliográficos
Autores principales: Ahmadi, Mohsen, Fischer, Christian, Ghosh, Ashta C., Schulzke, Carola
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6637267/
https://www.ncbi.nlm.nih.gov/pubmed/31355183
http://dx.doi.org/10.3389/fchem.2019.00486
_version_ 1783436208557260800
author Ahmadi, Mohsen
Fischer, Christian
Ghosh, Ashta C.
Schulzke, Carola
author_facet Ahmadi, Mohsen
Fischer, Christian
Ghosh, Ashta C.
Schulzke, Carola
author_sort Ahmadi, Mohsen
collection PubMed
description A Mo(IV) mono-oxido bis-dithiolene complex, [MoO(mohdt)(2)](2−) (mohdt = 1-methoxy-1-oxo-4-hydroxy-but-2-ene-2,3-bis-thiolate) was synthesized as a structural and functional model for molybdenum oxidoreductase enzymes of the DMSO reductase family. It was comprehensively characterized by inter alia various spectroscopic methods and employed as an oxygen atom transfer (OAT) catalyst. The ligand precursor of mohdt was readily prepared by a three-step synthesis starting from dimethyl-but-2-ynedioate. Crystallographic and (13)C-NMR data support the rationale that by asymmetric substitution the electronic structure of the ene-dithio moiety can be fine-tuned. The Mo(IV)O bis-dithiolene complex was obtained by in situ reaction of the de-protected ligand with the metal precursor complex trans-[MoO(2)(CN)(4)](4−). The catalytic oxygen atom transfer mediated by the complex was investigated by the model OAT reaction from DMSO to triphenylphosphine with the substrate transformation being monitored by (31)P NMR spectroscopy. [MoO(mohdt)(2)](2−) was found to be catalytically active reaching 93% conversion, albeit with a rather low reaction rate (reaction time 56 h). The observed overall catalytic activity is comparable to those of related complexes with aromatic dithiolene ligands despite the novel ligand being aliphatic in nature and originally perceived to perform more swiftly. The respective results are rationalized with respect to a potential intermolecular interaction between the hydroxyl and ester functions together with the electron-withdrawing functional groups of the dithiolene ligands of the molybdenum mono-oxido complex and equilibrium between the active monomeric Mo(IV)O and Mo(VI)O(2) and the unreactive dimeric M [Formula: see text] O(3) species.
format Online
Article
Text
id pubmed-6637267
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-66372672019-07-26 An Asymmetrically Substituted Aliphatic Bis-Dithiolene Mono-Oxido Molybdenum(IV) Complex With Ester and Alcohol Functions as Structural and Functional Active Site Model of Molybdoenzymes Ahmadi, Mohsen Fischer, Christian Ghosh, Ashta C. Schulzke, Carola Front Chem Chemistry A Mo(IV) mono-oxido bis-dithiolene complex, [MoO(mohdt)(2)](2−) (mohdt = 1-methoxy-1-oxo-4-hydroxy-but-2-ene-2,3-bis-thiolate) was synthesized as a structural and functional model for molybdenum oxidoreductase enzymes of the DMSO reductase family. It was comprehensively characterized by inter alia various spectroscopic methods and employed as an oxygen atom transfer (OAT) catalyst. The ligand precursor of mohdt was readily prepared by a three-step synthesis starting from dimethyl-but-2-ynedioate. Crystallographic and (13)C-NMR data support the rationale that by asymmetric substitution the electronic structure of the ene-dithio moiety can be fine-tuned. The Mo(IV)O bis-dithiolene complex was obtained by in situ reaction of the de-protected ligand with the metal precursor complex trans-[MoO(2)(CN)(4)](4−). The catalytic oxygen atom transfer mediated by the complex was investigated by the model OAT reaction from DMSO to triphenylphosphine with the substrate transformation being monitored by (31)P NMR spectroscopy. [MoO(mohdt)(2)](2−) was found to be catalytically active reaching 93% conversion, albeit with a rather low reaction rate (reaction time 56 h). The observed overall catalytic activity is comparable to those of related complexes with aromatic dithiolene ligands despite the novel ligand being aliphatic in nature and originally perceived to perform more swiftly. The respective results are rationalized with respect to a potential intermolecular interaction between the hydroxyl and ester functions together with the electron-withdrawing functional groups of the dithiolene ligands of the molybdenum mono-oxido complex and equilibrium between the active monomeric Mo(IV)O and Mo(VI)O(2) and the unreactive dimeric M [Formula: see text] O(3) species. Frontiers Media S.A. 2019-07-11 /pmc/articles/PMC6637267/ /pubmed/31355183 http://dx.doi.org/10.3389/fchem.2019.00486 Text en Copyright © 2019 Ahmadi, Fischer, Ghosh and Schulzke. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Chemistry
Ahmadi, Mohsen
Fischer, Christian
Ghosh, Ashta C.
Schulzke, Carola
An Asymmetrically Substituted Aliphatic Bis-Dithiolene Mono-Oxido Molybdenum(IV) Complex With Ester and Alcohol Functions as Structural and Functional Active Site Model of Molybdoenzymes
title An Asymmetrically Substituted Aliphatic Bis-Dithiolene Mono-Oxido Molybdenum(IV) Complex With Ester and Alcohol Functions as Structural and Functional Active Site Model of Molybdoenzymes
title_full An Asymmetrically Substituted Aliphatic Bis-Dithiolene Mono-Oxido Molybdenum(IV) Complex With Ester and Alcohol Functions as Structural and Functional Active Site Model of Molybdoenzymes
title_fullStr An Asymmetrically Substituted Aliphatic Bis-Dithiolene Mono-Oxido Molybdenum(IV) Complex With Ester and Alcohol Functions as Structural and Functional Active Site Model of Molybdoenzymes
title_full_unstemmed An Asymmetrically Substituted Aliphatic Bis-Dithiolene Mono-Oxido Molybdenum(IV) Complex With Ester and Alcohol Functions as Structural and Functional Active Site Model of Molybdoenzymes
title_short An Asymmetrically Substituted Aliphatic Bis-Dithiolene Mono-Oxido Molybdenum(IV) Complex With Ester and Alcohol Functions as Structural and Functional Active Site Model of Molybdoenzymes
title_sort asymmetrically substituted aliphatic bis-dithiolene mono-oxido molybdenum(iv) complex with ester and alcohol functions as structural and functional active site model of molybdoenzymes
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6637267/
https://www.ncbi.nlm.nih.gov/pubmed/31355183
http://dx.doi.org/10.3389/fchem.2019.00486
work_keys_str_mv AT ahmadimohsen anasymmetricallysubstitutedaliphaticbisdithiolenemonooxidomolybdenumivcomplexwithesterandalcoholfunctionsasstructuralandfunctionalactivesitemodelofmolybdoenzymes
AT fischerchristian anasymmetricallysubstitutedaliphaticbisdithiolenemonooxidomolybdenumivcomplexwithesterandalcoholfunctionsasstructuralandfunctionalactivesitemodelofmolybdoenzymes
AT ghoshashtac anasymmetricallysubstitutedaliphaticbisdithiolenemonooxidomolybdenumivcomplexwithesterandalcoholfunctionsasstructuralandfunctionalactivesitemodelofmolybdoenzymes
AT schulzkecarola anasymmetricallysubstitutedaliphaticbisdithiolenemonooxidomolybdenumivcomplexwithesterandalcoholfunctionsasstructuralandfunctionalactivesitemodelofmolybdoenzymes
AT ahmadimohsen asymmetricallysubstitutedaliphaticbisdithiolenemonooxidomolybdenumivcomplexwithesterandalcoholfunctionsasstructuralandfunctionalactivesitemodelofmolybdoenzymes
AT fischerchristian asymmetricallysubstitutedaliphaticbisdithiolenemonooxidomolybdenumivcomplexwithesterandalcoholfunctionsasstructuralandfunctionalactivesitemodelofmolybdoenzymes
AT ghoshashtac asymmetricallysubstitutedaliphaticbisdithiolenemonooxidomolybdenumivcomplexwithesterandalcoholfunctionsasstructuralandfunctionalactivesitemodelofmolybdoenzymes
AT schulzkecarola asymmetricallysubstitutedaliphaticbisdithiolenemonooxidomolybdenumivcomplexwithesterandalcoholfunctionsasstructuralandfunctionalactivesitemodelofmolybdoenzymes