Tether-directed synthesis of highly substituted oxasilacycles via an intramolecular allylation employing allylsilanes

Background<p>Using a silyl tether to unite an aldehyde electrophile and allylsilane nucleophile into a single molecule allows a subsequent Lewis-acid-mediated allylation to proceed in an intramolecular sense and therefore receive all the benefits associated with such processes. However, with t...

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Main Authors: Peter J. Jervis, Liam R. Cox
Format: Article
Language:English
Published: Beilstein-Institut 2007-02-01
Series:Beilstein Journal of Organic Chemistry
Online Access:https://doi.org/10.1186/1860-5397-3-6
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spelling doaj-0306737f57fa4e9a8fff0e2e4ca7be762021-04-02T07:13:29ZengBeilstein-InstitutBeilstein Journal of Organic Chemistry1860-53972007-02-0131610.1186/1860-5397-3-61860-5397-3-6Tether-directed synthesis of highly substituted oxasilacycles via an intramolecular allylation employing allylsilanesPeter J. Jervis0Liam R. Cox1School of Chemistry, The University of Birmingham, Edgbaston, Birmingham, B15 2TT, UKSchool of Chemistry, The University of Birmingham, Edgbaston, Birmingham, B15 2TT, UKBackground<p>Using a silyl tether to unite an aldehyde electrophile and allylsilane nucleophile into a single molecule allows a subsequent Lewis-acid-mediated allylation to proceed in an intramolecular sense and therefore receive all the benefits associated with such processes. However, with the ability to cleave the tether post allylation, a product that is the result of a net intermolecular reaction can be obtained. In the present study, four diastereoisomeric β-silyloxy-α-methyl aldehydes, which contain an allylsilane tethered through the β-carbinol centre, have been prepared, in order to probe how the relative configuration of the two stereogenic centres affects the efficiency and selectivity of the intramolecular allylation.</p><p>Results</p><p>Syn-aldehydes, syn-4a and syn-4b, both react poorly, affording all four possible diastereoisomeric oxasilacycle products. In contrast, the anti aldehydes anti-4a and anti-4b react analogously to substrates that lack substitution at the α-site, affording only two of the four possible allylation products.</p><p>Conclusion</p><p>The outcome of the reaction with anti-aldehydes is in accord with reaction proceeding through a chair-like transition state (T.S.). In these systems, the sense of 1,3-stereoinduction can be rationalised by the aldehyde electrophile adopting a pseudoaxial orientation, which will minimise dipole-dipole interactions in the T.S. The 1,4-stereoinduction in these substrates is modest and seems to be modulated by the R substituent in the starting material. In the case of the syn-substrates, cyclisation through a chair T.S. is unlikely as this would require the methyl substituent α to the reacting carbonyl group to adopt an unfavourable pseudoaxial position. It is therefore proposed that these substrates react through poorly-defined T.S.s and consequently exhibit essentially no stereoselectivity.</p>https://doi.org/10.1186/1860-5397-3-6
collection DOAJ
language English
format Article
sources DOAJ
author Peter J. Jervis
Liam R. Cox
spellingShingle Peter J. Jervis
Liam R. Cox
Tether-directed synthesis of highly substituted oxasilacycles via an intramolecular allylation employing allylsilanes
Beilstein Journal of Organic Chemistry
author_facet Peter J. Jervis
Liam R. Cox
author_sort Peter J. Jervis
title Tether-directed synthesis of highly substituted oxasilacycles via an intramolecular allylation employing allylsilanes
title_short Tether-directed synthesis of highly substituted oxasilacycles via an intramolecular allylation employing allylsilanes
title_full Tether-directed synthesis of highly substituted oxasilacycles via an intramolecular allylation employing allylsilanes
title_fullStr Tether-directed synthesis of highly substituted oxasilacycles via an intramolecular allylation employing allylsilanes
title_full_unstemmed Tether-directed synthesis of highly substituted oxasilacycles via an intramolecular allylation employing allylsilanes
title_sort tether-directed synthesis of highly substituted oxasilacycles via an intramolecular allylation employing allylsilanes
publisher Beilstein-Institut
series Beilstein Journal of Organic Chemistry
issn 1860-5397
publishDate 2007-02-01
description Background<p>Using a silyl tether to unite an aldehyde electrophile and allylsilane nucleophile into a single molecule allows a subsequent Lewis-acid-mediated allylation to proceed in an intramolecular sense and therefore receive all the benefits associated with such processes. However, with the ability to cleave the tether post allylation, a product that is the result of a net intermolecular reaction can be obtained. In the present study, four diastereoisomeric β-silyloxy-α-methyl aldehydes, which contain an allylsilane tethered through the β-carbinol centre, have been prepared, in order to probe how the relative configuration of the two stereogenic centres affects the efficiency and selectivity of the intramolecular allylation.</p><p>Results</p><p>Syn-aldehydes, syn-4a and syn-4b, both react poorly, affording all four possible diastereoisomeric oxasilacycle products. In contrast, the anti aldehydes anti-4a and anti-4b react analogously to substrates that lack substitution at the α-site, affording only two of the four possible allylation products.</p><p>Conclusion</p><p>The outcome of the reaction with anti-aldehydes is in accord with reaction proceeding through a chair-like transition state (T.S.). In these systems, the sense of 1,3-stereoinduction can be rationalised by the aldehyde electrophile adopting a pseudoaxial orientation, which will minimise dipole-dipole interactions in the T.S. The 1,4-stereoinduction in these substrates is modest and seems to be modulated by the R substituent in the starting material. In the case of the syn-substrates, cyclisation through a chair T.S. is unlikely as this would require the methyl substituent α to the reacting carbonyl group to adopt an unfavourable pseudoaxial position. It is therefore proposed that these substrates react through poorly-defined T.S.s and consequently exhibit essentially no stereoselectivity.</p>
url https://doi.org/10.1186/1860-5397-3-6
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