| Literature DB >> 19190743 |
Ann Bracegirdle1, Jonathan Clayden, Lai Wah Lai.
Abstract
Atropisomeric biaryl aldehydes undergo diastereoselective condensation with (-)-ephedrine and with a proline-derived diamine, with selectivity highly dependent on solvent, temperature and reaction conditions. Levels of thermodynamic control up to 5:1 may be obtained by heating the diamine with the aldehyde in a sealed tube. Alternatively, crystallisation-induced dynamic transformation allows isolation of a single diastereoisomer in up to 85% yield. Hydrolysis and reduction of the major diastereoisomeric product of the reaction yields atropisomeric biaryls in >99:1 enantiomeric ratios.Entities:
Keywords: atropisomer; biaryl; dynamic resolution; ephedrine; imdazolidine; oxazolidine
Year: 2008 PMID: 19190743 PMCID: PMC2633665 DOI: 10.3762/bjoc.4.47
Source DB: PubMed Journal: Beilstein J Org Chem ISSN: 1860-5397 Impact factor: 2.883
Scheme 1Synthesis of racemic aldehydes.
Synthesis of biaryl aldehydes 6.
| entry | R1, R2 | Oxazoline | Aldehyde |
| 1 | MeO, H | ||
| 2 | EtO, H | ||
| 3 | |||
| 4 | Me, H | ||
| 5 | Et, H | ||
| 6 | |||
| 7 | benzoa | ||
a4g = 1-naphthylmagnesium bromide.
Scheme 2Diastereoisomeric imidazolidines and oxazolidines from biaryl aldehydes.
Monitoring diastereoselectivity in the formation and/or interconversion of the diastereoisomers of imidazolidines 9a and oxazolidines 10a.
| T/°C | ||||
| 25 | 1:1 | 1:1 | – | – |
| 40 | 1.5:1 | 1:1 | – | – |
| 50 | 1.5:1 | 1:1 | 1.7:1 | 1:1 |
| 60 | 1.5:1 | 1:1 | 1.5:1 | 1:1 |
| 70 | 1.5:1 | – | 1.2:1 | 1.2:1 |
| 80 | 1.8:1 | 1.6:1 | – | 1.2:1 |
| 90 | 5:1 | 1.8:1 | – | 1:1 |
| 100 | 5:1 | – | 2:1 | – |
| 110 | 5:1 | – | 2:1 | – |
aStereochemistry assigned by X-ray crystallography: see below. bSolvent = toluene-d8. cSolvent = benzene-d6.
Preparative scale synthesis of imidazolidines 9 and oxazolidines 10 using (a) a Dean-Stark trap (DS) and (b) a sealed tube.
| Starting | ||||||||
| 1:1 | 3:1g,h | 1:1 | 1:1 | 3:1g,i | 1:1 | 5:1g | 27 | |
| – | – | – | – | – | – | 5:1j | 37 | |
| – | – | – | – | – | – | 5:1j | 34 | |
| 1:1 | 1:1 | 1:1 | 1:1 | 1:1 | 1:1 | 1:1 | 32 | |
| – | – | – | – | – | – | 1:1 | 24 | |
| – | – | – | – | – | – | 1:1 | 24 | |
| 1:1 | 1:1 | 1:1 | 1:1 | 1:1 | 1:1 | 1:1 | 27 | |
aCarried out in a Dean Stark apparatus. bSolvent = benzene. cSolvent = toluene. dSolvent = xylene. eCarried out in a sealed tube. fYield after chromatographical purification. gStereochemistry assigned by X-ray crystallography: see below. h81% isolated on crystallisation. i85% isolated on crystallisation. jStereochemistry assigned by analogy with 10a.
Figure 1X-ray crystal structure of 9a. X-ray data has been deposited with the Cambridge Crystallographic Data Centre: deposition number 693530.
Figure 2X-ray crystal structure of 10a. X-ray data has been deposited with the Cambridge Crystallographic Data Centre: deposition number 693529.
Scheme 3Atropisomeric alcohols by hydrolysis and reduction.
Isolation of imidazolidines and hydrolysis/reduction to atropisomeric alcohols 11.
| Imidazolidine | alcohol | yield | Era |
| 55 | >98:2 | ||
| 28 | >98:2 | ||
| 44 | >98:2 | ||
| 43 | >98:2 | ||
aer determined by 1H NMR in the presence of (+)-TFAE [38].
Scheme 4Mechanistic rationalisation of the dynamic resolution in the formation of 9.