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Catalytic Enantioselective Alkylation of Indoles with trans-4-Methylthio-β-Nitrostyrene

[Image: see text] The reaction of the rhodium aqua-complex (S(Rh),R(C))-[Cp*Rh{(R)-Prophos} (OH(2))][SbF(6)](2) [Cp* = C(5)Me(5), Prophos = propane-1,2-diyl-bis(diphenylphosphane)] (1) with trans-4-methylthio-β-nitrostyrene (MTNS) gives two linkage isomers (S(Rh),R(C))-[Cp*Rh{(R)-Prophos}(κ(1)O-MTNS...

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Autores principales: Méndez, Isabel, Ferrer, Carlos, Rodríguez, Ricardo, Lahoz, Fernando J., García-Orduña, Pilar, Carmona, Daniel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7643163/
https://www.ncbi.nlm.nih.gov/pubmed/33163781
http://dx.doi.org/10.1021/acsomega.0c03485
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author Méndez, Isabel
Ferrer, Carlos
Rodríguez, Ricardo
Lahoz, Fernando J.
García-Orduña, Pilar
Carmona, Daniel
author_facet Méndez, Isabel
Ferrer, Carlos
Rodríguez, Ricardo
Lahoz, Fernando J.
García-Orduña, Pilar
Carmona, Daniel
author_sort Méndez, Isabel
collection PubMed
description [Image: see text] The reaction of the rhodium aqua-complex (S(Rh),R(C))-[Cp*Rh{(R)-Prophos} (OH(2))][SbF(6)](2) [Cp* = C(5)Me(5), Prophos = propane-1,2-diyl-bis(diphenylphosphane)] (1) with trans-4-methylthio-β-nitrostyrene (MTNS) gives two linkage isomers (S(Rh),R(C))-[Cp*Rh{(R)-Prophos}(κ(1)O-MTNS)](2+) (3-O) and (S(Rh),R(C))-[Cp*Rh{(R)-Prophos}(κ(1)S-MTNS)](2+) (3-S) in which the nitrostyrene binds the metal through one of the oxygen atoms of the nitro group or through the sulfur atom, respectively. Both isomers are in equilibrium in dichloromethane solution, the equilibrium constant being affected by the temperature in such a way that when the temperature increases, the relative concentration of the oxygen-bonded isomer 3-O increases. The homologue aqua-complex of iridium, (S(Ir),R(C))-[Cp*Ir{(R)-Prophos}(OH(2))][SbF(6)](2) (2), also reacts with MTNS; but only the sulfur-coordinated isomer (S(Ir),R(C))-[Cp*Ir{(R)-Prophos}(κ(1)S-MTNS)](2+) (4-S) is detected in the solution by NMR spectroscopy. The crystal structures of 3-S and 4-S have been elucidated by X-ray diffractometric methods. Complexes 1 and 2 catalyze the Friedel–Crafts reaction of indole, N-methylindole, 2-methylindole, or N-methyl-2-methylindole with MTNS. Up to 93% ee has been achieved for N-methyl-2-methylindole. With this indole, the ee increases as conversion increases, ee at 263 K is lower than that obtained at 298 K, and the sign of the chirality of the major enantiomer changes at temperatures below 263 K. Detection and characterization of the catalytic intermediates metal-aci-nitro and the free aci-nitro compound as well as detection of the Friedel–Crafts (FC)-adduct complex involved in the catalysis allowed us to propose a plausible double cycle that accounts for the catalytic observations.
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spelling pubmed-76431632020-11-06 Catalytic Enantioselective Alkylation of Indoles with trans-4-Methylthio-β-Nitrostyrene Méndez, Isabel Ferrer, Carlos Rodríguez, Ricardo Lahoz, Fernando J. García-Orduña, Pilar Carmona, Daniel ACS Omega [Image: see text] The reaction of the rhodium aqua-complex (S(Rh),R(C))-[Cp*Rh{(R)-Prophos} (OH(2))][SbF(6)](2) [Cp* = C(5)Me(5), Prophos = propane-1,2-diyl-bis(diphenylphosphane)] (1) with trans-4-methylthio-β-nitrostyrene (MTNS) gives two linkage isomers (S(Rh),R(C))-[Cp*Rh{(R)-Prophos}(κ(1)O-MTNS)](2+) (3-O) and (S(Rh),R(C))-[Cp*Rh{(R)-Prophos}(κ(1)S-MTNS)](2+) (3-S) in which the nitrostyrene binds the metal through one of the oxygen atoms of the nitro group or through the sulfur atom, respectively. Both isomers are in equilibrium in dichloromethane solution, the equilibrium constant being affected by the temperature in such a way that when the temperature increases, the relative concentration of the oxygen-bonded isomer 3-O increases. The homologue aqua-complex of iridium, (S(Ir),R(C))-[Cp*Ir{(R)-Prophos}(OH(2))][SbF(6)](2) (2), also reacts with MTNS; but only the sulfur-coordinated isomer (S(Ir),R(C))-[Cp*Ir{(R)-Prophos}(κ(1)S-MTNS)](2+) (4-S) is detected in the solution by NMR spectroscopy. The crystal structures of 3-S and 4-S have been elucidated by X-ray diffractometric methods. Complexes 1 and 2 catalyze the Friedel–Crafts reaction of indole, N-methylindole, 2-methylindole, or N-methyl-2-methylindole with MTNS. Up to 93% ee has been achieved for N-methyl-2-methylindole. With this indole, the ee increases as conversion increases, ee at 263 K is lower than that obtained at 298 K, and the sign of the chirality of the major enantiomer changes at temperatures below 263 K. Detection and characterization of the catalytic intermediates metal-aci-nitro and the free aci-nitro compound as well as detection of the Friedel–Crafts (FC)-adduct complex involved in the catalysis allowed us to propose a plausible double cycle that accounts for the catalytic observations. American Chemical Society 2020-10-21 /pmc/articles/PMC7643163/ /pubmed/33163781 http://dx.doi.org/10.1021/acsomega.0c03485 Text en This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited.
spellingShingle Méndez, Isabel
Ferrer, Carlos
Rodríguez, Ricardo
Lahoz, Fernando J.
García-Orduña, Pilar
Carmona, Daniel
Catalytic Enantioselective Alkylation of Indoles with trans-4-Methylthio-β-Nitrostyrene
title Catalytic Enantioselective Alkylation of Indoles with trans-4-Methylthio-β-Nitrostyrene
title_full Catalytic Enantioselective Alkylation of Indoles with trans-4-Methylthio-β-Nitrostyrene
title_fullStr Catalytic Enantioselective Alkylation of Indoles with trans-4-Methylthio-β-Nitrostyrene
title_full_unstemmed Catalytic Enantioselective Alkylation of Indoles with trans-4-Methylthio-β-Nitrostyrene
title_short Catalytic Enantioselective Alkylation of Indoles with trans-4-Methylthio-β-Nitrostyrene
title_sort catalytic enantioselective alkylation of indoles with trans-4-methylthio-β-nitrostyrene
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7643163/
https://www.ncbi.nlm.nih.gov/pubmed/33163781
http://dx.doi.org/10.1021/acsomega.0c03485
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