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Facile access to functionalized chiral secondary benzylic boronic esters via catalytic asymmetric hydroboration

Allylic and homoallylic phosphonates bearing an aryl or heteroaryl substituent at the γ- or δ-position undergo rhodium-catalyzed asymmetric hydroboration by pinacolborane to give functionalized chiral secondary benzylic boronic esters in yields up to 86% and enantiomer ratios up to 99 : 1. Compared...

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Autores principales: Chakrabarty, Suman, Palencia, Hector, Morton, Martha D., Carr, Ryan O., Takacs, James M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2019
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Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6520923/
https://www.ncbi.nlm.nih.gov/pubmed/31183035
http://dx.doi.org/10.1039/c8sc05613g
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author Chakrabarty, Suman
Palencia, Hector
Morton, Martha D.
Carr, Ryan O.
Takacs, James M.
author_facet Chakrabarty, Suman
Palencia, Hector
Morton, Martha D.
Carr, Ryan O.
Takacs, James M.
author_sort Chakrabarty, Suman
collection PubMed
description Allylic and homoallylic phosphonates bearing an aryl or heteroaryl substituent at the γ- or δ-position undergo rhodium-catalyzed asymmetric hydroboration by pinacolborane to give functionalized chiral secondary benzylic boronic esters in yields up to 86% and enantiomer ratios up to 99 : 1. Compared to minimally-functionalized terminal and 1,1-disubstituted vinyl arenes, there are relatively few reports of efficient catalytic asymmetric hydroboration (CAHB) of more highly functionalized internal alkenes. Phosphonate substrates bearing a variety of common heterocyclic ring systems, including furan, indole, pyrrole and thiophene derivatives, as well as those bearing basic nitrogen substituents (e.g., morpholine and pyrazine) are tolerated, although donor substituents positioned in close proximity of the alkene can influence the course of the reaction. Stereoisomeric (E)- and (Z)-substrates afford the same major enantiomer of the borated product. Deuterium-labelling studies reveal that rapid (Z)- to (E)-alkene isomerization accounts for the observed (E/Z)-stereoconvergence during CAHB. The synthetic utility of the chiral boronic ester products is illustrated by stereospecific C–B bond transformations including stereoretentive electrophile promoted 1,2-B-to-C migrations, stereoinvertive S(E)2 reactions of boron-ate complexes with electrophiles, and stereoretentive palladium- and rhodium-catalyzed cross-coupling protocols.
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spelling pubmed-65209232019-06-10 Facile access to functionalized chiral secondary benzylic boronic esters via catalytic asymmetric hydroboration Chakrabarty, Suman Palencia, Hector Morton, Martha D. Carr, Ryan O. Takacs, James M. Chem Sci Chemistry Allylic and homoallylic phosphonates bearing an aryl or heteroaryl substituent at the γ- or δ-position undergo rhodium-catalyzed asymmetric hydroboration by pinacolborane to give functionalized chiral secondary benzylic boronic esters in yields up to 86% and enantiomer ratios up to 99 : 1. Compared to minimally-functionalized terminal and 1,1-disubstituted vinyl arenes, there are relatively few reports of efficient catalytic asymmetric hydroboration (CAHB) of more highly functionalized internal alkenes. Phosphonate substrates bearing a variety of common heterocyclic ring systems, including furan, indole, pyrrole and thiophene derivatives, as well as those bearing basic nitrogen substituents (e.g., morpholine and pyrazine) are tolerated, although donor substituents positioned in close proximity of the alkene can influence the course of the reaction. Stereoisomeric (E)- and (Z)-substrates afford the same major enantiomer of the borated product. Deuterium-labelling studies reveal that rapid (Z)- to (E)-alkene isomerization accounts for the observed (E/Z)-stereoconvergence during CAHB. The synthetic utility of the chiral boronic ester products is illustrated by stereospecific C–B bond transformations including stereoretentive electrophile promoted 1,2-B-to-C migrations, stereoinvertive S(E)2 reactions of boron-ate complexes with electrophiles, and stereoretentive palladium- and rhodium-catalyzed cross-coupling protocols. Royal Society of Chemistry 2019-03-25 /pmc/articles/PMC6520923/ /pubmed/31183035 http://dx.doi.org/10.1039/c8sc05613g Text en This journal is © The Royal Society of Chemistry 2019 https://creativecommons.org/licenses/by-nc/3.0/This article is freely available. This article is licensed under a Creative Commons Attribution Non Commercial 3.0 Unported Licence (CC BY-NC 3.0)
spellingShingle Chemistry
Chakrabarty, Suman
Palencia, Hector
Morton, Martha D.
Carr, Ryan O.
Takacs, James M.
Facile access to functionalized chiral secondary benzylic boronic esters via catalytic asymmetric hydroboration
title Facile access to functionalized chiral secondary benzylic boronic esters via catalytic asymmetric hydroboration
title_full Facile access to functionalized chiral secondary benzylic boronic esters via catalytic asymmetric hydroboration
title_fullStr Facile access to functionalized chiral secondary benzylic boronic esters via catalytic asymmetric hydroboration
title_full_unstemmed Facile access to functionalized chiral secondary benzylic boronic esters via catalytic asymmetric hydroboration
title_short Facile access to functionalized chiral secondary benzylic boronic esters via catalytic asymmetric hydroboration
title_sort facile access to functionalized chiral secondary benzylic boronic esters via catalytic asymmetric hydroboration
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6520923/
https://www.ncbi.nlm.nih.gov/pubmed/31183035
http://dx.doi.org/10.1039/c8sc05613g
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