Synlett 2009(10): 1609-1613  
DOI: 10.1055/s-0029-1217325
LETTER
© Georg Thieme Verlag Stuttgart ˙ New York

Development and Scope of the Phenolic Aldol Reaction of 2-Formylpyridines

Matthew Whiting*, Mark C. Wilkinson, Kathy Harwood
Synthetic Chemistry, Chemical Development, GlaxoSmithKline, Gunnels Wood Road, Stevenage, Hertfordshire, SG1 2NY, UK
Fax: +44(1438)764869; e-Mail: matthew.p.whiting@gsk.com;
Weitere Informationen

Publikationsverlauf

Received 9 January 2009
Publikationsdatum:
02. Juni 2009 (online)

Abstract

2-Formylpyridines have been shown to be suitable electrophiles for the magnesium-promoted phenolic aldol reaction. Exceptionally mild reaction conditions have been developed and a brief survey of the reaction scope has been conducted. This process gives straightforward access to a range of functionalised 2-hydroxy­phenyl-2-pyridylmethanols and 2-hydroxyphenyl-2-pyridylmethanes via their subsequent reduction.

    References and Notes

  • For leading references, see:
  • 2a Hall A. Billinton A. Giblin GMP. Curr. Opin. Drug Discovery Devel.  2007,  10:  597 
  • 2b Giblin GMP, Hall A, Hurst DN, Rawlings DA, and Scoccitti T. inventors; WO  2006066968.  ; Chem. Abstr. 2006, 145, 83231
  • 3a Casiraghi G. Salerno G. Sartori G. Synthesis  1975,  186 
  • 3b Casiraghi G. Cornia M. Rassu G. J. Org. Chem.  1988,  53:  4919 
  • 3c Bigi F. Casnati G. Sartori G. Araldi G. Bocelli G. Tetrahedron Lett.  1989,  30:  1121 
  • 3d Cornia M. Casiraghi G. Tetrahedron  1989,  45:  2869 
  • 3e Saimoto H. Yoshida K. Tetsuya M. Morimoto M. Sashiwa H. Shigemasa Y. J. Org. Chem.  1996,  61:  6768 
  • 3f Hewawasam P. Erway M. Tetrahedron Lett.  1998,  39:  3981 
  • 3g Rondot C. Retailleau P. Zhu J. Org. Lett.  2007,  9:  247 
  • 3h Chen X. Zhu J. Angew. Chem. Int. Ed.  2007,  46:  3962 
  • 4 For a review, see: Casnati G. Casiraghi G. Pochini A. Sartori G. Ungaro R. Pure Appl. Chem.  1983,  55:  1677 
  • 5 For leading references, see: Bocelli G. Cantoni A. Sartori G. Maggi R. Bigi F. Chem. Eur. J.  1997,  3:  1269 
  • For selected examples, see:
  • 6a Casiraghi G. Casnati G. Cornia M. Sartori G. Ungaro R. J. Chem. Soc. Perkin Trans. 1  1974,  2077 
  • 6b Casnati G. Colli M. Pochini A. Ungaro R. Chim. Ind. (Milan)  1977,  59:  764 
  • 6c Casiraghi G. Casnati G. Cornia M. Pochini M. Puglia G. Sartori G. Ungaro R. J. Chem. Soc., Perkin Trans. 1  1978,  318 
  • 6d Sartori G. Casiraghi G. Bolzoni L. Casnati G. J. Org. Chem.  1979,  44:  803 
  • 6e Casiraghi G. Casnati G. Dradi E. Messori R. Sartori G. Tetrahedron  1979,  35:  2061 
  • 6f Casiraghi G. Casnati G. Pochini A. Ungaro R.
    J. Chem. Soc., Perkin Trans. 1  1982,  805 
  • 6g Mibu N. Sumoto K. Chem. Pharm. Bull.  2000,  48:  1810 
  • 7 Sartori G. Maggi R. Bigi F. Arienti A. Porta C. Predieri G. Tetrahedron  1994,  50:  10587 
  • For the use of Et3N/MgCl2 to promote selective ortho-formylation of phenols, see:
  • 9a Hofslokken NU. Skattebol L. Acta Chem. Scand.  1999,  53:  258 
  • 9b Hansen TV. Skattebol L. Org. Synth.  2005,  82:  64 
  • 10 This becomes the main reaction pathway if phenol is omitted from the reaction mixture. For a recent report of a similar process, see: Abaee MS. Sharifi R. Mojtahedi MM. Org. Lett.  2005,  7:  5893 
  • 12 This reaction will be described in more detail in a future report. Addition of ZnBr2 does not have a significant effect on the rate of the desired reduction but greatly reduces the rate of competitive dechlorination. For a report on the use of zinc halides to modulate the activity of hydrogenation catalysts, see: Wu G. Huang M. Richards M. Poirier M. Wen X. Draper RW. Synthesis  2003,  1657 
1

Current address: Peakdale Molecular Ltd, Peakdale Science Park, Sheffield Road, Chapel-en-le-Frith SK23 0PG, UK.

8

Use of Et2O on scale is complicated by its high volatility and flammability, MTBE is a much preferred alternative.

11

Solvents investigated; acetone, MeCN, MTBE, chloro-benzene, cyclopentyl methyl ether, CH2Cl2, EtOH, EtOAc, i-PrOAc, 2-methyltetrahydrofuran, THF, α,α,α-trifluoro-toluene, and sulfolane.