Synlett 2009(7): 1175-1179  
DOI: 10.1055/s-0028-1088153
LETTER
© Georg Thieme Verlag Stuttgart ˙ New York

Hg(OTf)2-Catalyzed Instantaneous Hydration of β- and δ-Hydroxy Internal Alkynes with Complete Regioselectivity

Mugio Nishizawa*, Takayuki Takemoto, Ikuo Sasaki, Mayo Nakano, Elisabeth Ho, Kosuke Namba, Hirofumi Yamamoto, Hiroshi Imagawa
Faculty of Pharmaceutical Sciences, Tokushima Bunri University, Yamashiro-cho, Tokushima 770-8514, Japan
Fax: +81(88)6553051; e-Mail: mugi@ph.bunri-u.ac.jp;
Further Information

Publication History

Received 13 January 2009
Publication Date:
20 March 2009 (online)

Abstract

The hydration of β- and δ-hydroxy internal alkynes catalyzed by Hg(OTf)2 took place instantaneously to give ketones with complete regioselectivity under mild conditions, whereas the hydration of internal alkyne without hydroxy moiety was very slow and gave a mixture of ketones. If the hydroxy group is located more than five carbons from the triple bond it has no significant effect upon the hydration reaction.

    References and Notes

  • 2a Hintermann L. Labonne A. Synlett  2007,  1121 
  • 2b Stacy GW. Mikulec RA. Org. Synth., Coll. Vol. IV   Wiley; New York: 1963.  p.13-14  
  • 3a Thomas RJ. Campbell KN. Hennion GF. J. Am. Chem. Soc.  1938,  60:  718 
  • 3b Janardhanam S. Balakumar A. Rajagopalan K. Bai LS. Ravikumar K. Rajan SS. Synth. Commun.  1993,  23:  297 
  • 3c Mithran S. Subbaraman AS. Mamdapur VR. Org. Prep. Proced. Int.  1994,  26:  482 
  • 3d Take K. Okumura K. Tsubaki K. Taniguchi K. Terai T. Shiokawa Y. Chem. Pharm. Bull.  1996,  44:  1858 
  • 3e Schick H. Roatsch B. Schramm S. Gilsing H.-D. Ramm M. Gründemann E. J. Org. Chem.  1996,  61:  5788 
  • 3f Jacobi PA. Herradura P. Tetrahedron Lett.  1997,  38:  6621 
  • 4a Uchimoto K. Pure Appl. Chem.  1983,  55:  1845 
  • 4b Fukuda Y. Shiragami H. Uchimoto K. Nozaki H. J. Org. Chem.  1991,  56:  5816 
  • 5a Hiscox W. Jennings PW. Organometallics  1990,  9:  1997 
  • 5b Hartman JW. Hiscox WC. Jennings PW. J. Org. Chem.  1993,  58:  7613 
  • 5c Jennings PW. Hartman JW. Hiscox WC. Inorg. Chim. Acta  1994,  222:  317 
  • 6a Fukuda Y. Uchimoto K. J. Org. Chem.  1991,  56:  3729 
  • 6b Vasudevan A. Verzal MK. Synlett  2004,  631 
  • 7 Mizushima E. Sato K. Hayashi T. Tanaka M. Angew. Chem. Int. Ed.  2002,  41:  4563 
  • 8a James BR. Rempel GL. J. Am. Chem. Soc.  1969,  91:  863 
  • 8b Blum J. Huminer H. Alper H. J. Mol. Catal.  1992,  75:  153 
  • 9 Meier IK. Marsella JA. J. Mol. Catal.  1993,  78:  31 
  • 10 Damiano JP. Postel M. J. Organomet. Chem.  1996,  522:  303 
  • 11a Chapdelaine MJ. Warwick PJ. Shaw A. J. Org. Chem.  1989,  54:  1218 
  • 11b Tsuchimoto T. Joya T. Shirakawa E. Kawakami Y. Synlett  2000,  1777 
  • 11c Olivi N. Thomas E. Peyrat JF. Alami M. Brion JD. Synlett  2004,  2175 
  • 11d Bras GL. Provot O. Peyrat JF. Alami M. Brion JD. Tetrahedron Lett.  2006,  47:  5497 
  • 12a Khan MMT. Halligudi SB. Shukla S. J. Mol. Catal.  1990,  58:  299 
  • 12b Tokunaga M. Wakatsuki Y. Angew. Chem. Int. Ed.  1998,  37:  2867 
  • 12c Alvarez P. Bassetti M. Gimeno J. Mancini G. Tetrahedron Lett.  2001,  42:  8467 
  • 12d Suzuki T. Tokunaga M. Wakatsuki Y. Org. Lett.  2001,  3:  735 
  • 12e Grotjahn DB. Incarvito CD. Rheingold AL. Angew. Chem. Int. Ed.  2001,  40:  3884 
  • 13a Nishizawa M. Takenaka H. Nishide H. Hayashi Y. Tetrahedron Lett.  1983,  24:  2581 
  • 13b Nishizawa M. Morikuni E. Asoh K. Kan Y. Uenoyama K. Imagawa H. Synlett  1995,  169 
  • 13c Nishizawa M. Studies in Natural Product Chemistry: Stereoselective Synthesis   Part A, Vol. 1:  . Elsevier; Amsterdam: 1988.  p.655-676  
  • 13d Nishizawa M. J. Synth. Org. Chem. Jpn.  1999,  57:  677 
  • 13e Nishizawa M. Imagawa H. J. Synth. Org. Chem. Jpn.  2006,  64:  744 
  • 14a Nishizawa M. Skwarczynski M. Imagawa H. Sugihara T. Chem. Lett.  2002,  12 
  • 14b

    When the hydration of terminal alkyne was carried out using Hg(OTf)2 as catalyst, mercuric acetylide (i) is formed to some extent, corresponding to catalyst suicide (Figure  [¹] ).

  • 15a Nishizawa M. Yadav VK. Skwarczynski M. Takao H. Imagawa H. Sugihara T. Org. Lett.  2003,  5:  1609 
  • 15b Nishizawa M. Takao H. Yadav VK. Imagawa H. Sugihara T. Org. Lett.  2003,  5:  4563 
  • 15c Imagawa H. Iyenaga T. Nishizawa M. Org. Lett.  2005,  7:  451 
  • 15d Imagawa H. Iyenaga T. Nishizawa M. Synlett  2005,  703 
  • 15e Kurisaki T. Naniwa T. Yamamoto H. Imagawa H. Nishizawa M. Tetrahedron Lett.  2007,  48:  1871 
  • 15f Imagawa H. Kurisaki T. Nishizawa M. Org. Lett.  2004,  6:  3679 
  • 15g Yamamoto H. Nishiyama M. Imagawa H. Nishizawa M. Tetrahedron Lett.  2006,  47:  8369 
  • 15h Imagawa H. Kinoshita A. Fukuyama T. Yamamoto H. Nishizawa M. Tetrahedron Lett.  2006,  47:  4729 
  • 15i Yamamoto H. Pandey G. Asai Y. Nakano M. Kinoshita A. Namba K. Imagawa Nishizawa M. Org Lett.  2007,  9:  4029 
  • 15j Imagawa H. Asai Y. Takano H. Hamagaki H. Nishizawa M. Org. Lett.  2006,  8:  447 
  • 15k Nishizawa M. Hirakawa H. Nakagawa Y. Yamamoto H. Namba K. Imagawa H. Org Lett.  2007,  9:  5577 
  • 15l Yamamoto H. Sasaki I. Imagawa H. Nishizawa M. Org. Lett.  2007,  9:  1399 
  • 15m Namba K. Yamamoto H. Sasaki I. Mori K. Imagawa H. Nishizawa M. Org. Lett.  2008,  10:  1767 
  • 15n Namba K. Nakagawa Y. Yamamoto H. Imagawa H. Nishizawa M. Synlett  2008,  1719 
  • 16a Ménard D. Vidal A. Barthomeuf C. Lebreton J. Gosselin P. Synlett  2006,  57 
  • 16b Sim SH. Lee SI. Seo J. Chung YK. J. Org. Chem.  2007,  72:  9818 
  • 16c Muratake H. Natsume M. Tetrahedron  2006,  62:  7071 
  • 17 Yamamoto H. Sasaki I. Hirai Y. Namba K. Imagawa H. Nishizawa M. Angew. Chem. Int. Ed.  2009,  in press
  • 18a Liu B. De Brabander JK. Org. Lett.  2006,  8:  4907 
  • 18b Jalce G. Franck X. Seon-Meniel B. Hocquemiller R. Figadère B. Tetrahedron Lett.  2006,  47:  5905 
  • 20a Kuhakarn C. Kittigowittana K. Pohmakotr M. Peutrakul V. Tetrahedron  2005,  61:  8995 
  • 20b Miyashita M. Suzuki T. Hoshino M. Yoshikoshi A. Tetrahedron  1997,  53:  12469 
  • 20c Cavicchiol S. Savoia D. Trombini C. Umani-Ronchi A. J. Org. Chem.  1984,  49:  1246 
  • 20d Fuji K. Node M. Usami Y. Chem. Lett.  1986,  961 
  • 20e Yang SB. Gan FF. Chen GJ. Xu PF. Synlett  2008,  2532 
  • 20f Murata S. Tatsuda I. Synthesis  1978,  221 
  • 20g Taillier C. Bellosta V. Meyer C. Cossy J. Org. Lett.  2004,  6:  2145 
  • 20h Ljubović E. Šunjić V. Synthesis  2001,  423 
1

Present address: Division of Chemistry, Graduate School of Science, Hokkaido University, Kita-ku, Saporo 060-0810, Japan.

19

Typical Experimental Procedure
To a stirred mixture of dec-5-yn-1-ol (3, 280 mg, 2 mmol) and H2O (108 mg, 6 mmol) in MeCN (6.6 mL) was added a solution of Hg(OTf)2 (0.1 M MeCN soln, 0.2 mL, 0.02 mmol) at r.t., and the mixture was stirred for 5 min at the same temperature. After addition of Et3N (30 µL) and then brine (6 mL), the organic materials were extracted with Et2O. Dried and concentrated extract was subjected to a column chromatography on SiO2 using hexane and EtOAc (2:1) as an eluent to give 1-hydroxydecan-5-one (4, 275 mg, 90% yield) as a colorless oil.²0a

21

All new compounds were fully characterized by spectroscopic methods.