| Literature DB >> 21647261 |
Kay M Brummond1, Joshua M Osbourn.
Abstract
A thermal [2 + 2] cycloaddition reaction of allene-ynes has been used to transform chiral non-racemic allenyl oxindoles into chiral non-racemic spirooxindoles containing an alkylidene cyclobutene moiety. The enantiomeric excesses were determined by chiral lanthanide shift NMR analysis and the transfer of chiral information from the allene to the spirooxindole was found to be greater than 95%.Entities:
Keywords: alkylidene cyclobutene; allene; allenyloxindole; chiral lanthanide shift reagent; chiral transfer
Year: 2011 PMID: 21647261 PMCID: PMC3107521 DOI: 10.3762/bjoc.7.70
Source DB: PubMed Journal: Beilstein J Org Chem ISSN: 1860-5397 Impact factor: 2.883
Scheme 1Conversion of propargyl acetate 1 to spirooxindole 2 containing the core framework of welwitindolinone A isonitrile (3).
Scheme 2Preparation of enantiopure propargyl acetate 7 (R = Ac).
Figure 1Chiral NMR shift analysis of propargyl acetate 7.
Screening conditions for the formation of allenyloxindole 8.
| Entry | R | Solvent | Temp | Cuprate | R’ | Yield |
| 1 | Ms | THF | −45 °C | MeCu(CN)Li | Me | 0%a |
| 2 | Me | Et2O | 0 to 35 °C | MeCu(CN)Li | Me | 0%b |
| 3 | Ac | Et2O | 0 °C | MeCu(CN)Li | Me | 0%b |
| 4 | Ac | THF | −78 °C to rt | MeCu(CN)Li | Me | 0%c |
| 5 | Ac | Et2O | −78 °C | 0%b | ||
| 6 | Ac | THF | −78 °C | 49%d | ||
aComplete decomposition of the mesylate (generated in situ) was observed prior to cuprate addition. bComplete recovery of starting material. cStarting material was recovered in addition to the deacylation product. dThe product of a second addition of the tert-butyl group to the central carbon of the allene was also isolated in 21% yield.
Figure 2Chiral NMR shift analysis of allenyloxindole 8.
Scheme 3Microwave irradiation of allenyloxindole 8.
Figure 3Chiral NMR shift analysis of spirooxindole 9.
Figure 4Thermally generated biradical intermediate 10.