Subscribe to RSS
DOI: 10.1055/s-2005-921917
Synthesis of 3,5,7-Substituted Indoles via Heck Cyclisation
Publication History
Publication Date:
28 November 2005 (online)
Abstract
Traditional strategies in indole chemistry do not allow high yielding access to some substitution patterns such as 3,5,7-trisubstituted indoles. We report in this article the efficient synthesis of this type of indole. The Heck cyclisation strategy we used allows the synthesis of 7-iodo-, 7-nitro-, 7-amino- or 7-alkoxy indoles bearing other functionalities in the 3- and 5-positions. We believe the mild conditions used should allow preparation of indoles with a wide range of substituents in these two positions.
Key words
indoles - Heck reaction - palladium - anilines - hydroxybenzimidazole
- 1
Saxton JE. The Chemistry of Heterocyclic Compounds Part IV, Vol. 25: Wiley; New York: 1983. -
3a
Bartoli G.Palmieri G.Bosco M.Dalpozzo R. Tetrahedron Lett. 1989, 30: 2129 -
3b
Heath-Brown B.Philpott PG. J. Chem. Soc. 1965, 7185 -
3c
McKittrick B.Failli A.Steffan RJ.Soll RM. J. Heterocycl. Chem. 1990, 27: 2151 -
3d
Clark RD.Repke DB. Heterocycles 1984, 22: 195 - 4 Review on the use of transition metals in the synthesis and functionalisation of indoles:
Hegedus LS. Angew. Chem., Int. Ed. Engl. 1988, 27: 1113 -
5a This article gives a very comprehensive overview of the challenges faced in the synthesis of 7-substituted indoles:
Ezquerra J.Pedregal C.Lamas C. J. Org. Chem. 1996, 61: 5804 ; and references cited therein -
5b
Rodriguez AL.Koradin C.Dohle W.Knochel P. Angew. Chem. Int. Ed. 2000, 39: 2488 ; and references cited therein -
5c
Koradin C.Dohle W.Rodriguez AL.Schmid B.Knochel P. Tetrahedron 2003, 59: 1571 - It is possible to functionalise the 3-position in situ, but it implies concomitant substitution at the 2-position:
-
6a
Arcadi A.Cacchi S.Carcinelli V.Marinelli F. Tetrahedron 1994, 50: 437 -
6b
Arcadi A.Cacchi S.Marinelli F. Tetrahedron Lett. 1992, 33: 3915 - 7
Larock RC.Yum EK.Refvik MD. J. Org. Chem. 1998, 63: 7652 - 8
Satoh M.Miyaura N.Suzuki A. Synthesis 1987, 373 -
9a
Odle R.Blevins B.Ratcliff M.Hegedus LS. J. Org. Chem. 1980, 45: 2709 -
9b See also:
Yang S.Chung W. Indian J. Chem., Sect. B: Org. Chem. Incl. Med. Chem. 1999, 38: 897 - 10
Hartung CG.Fecher A.Chapell B.Snieckus V. Org. Lett. 2003, 5: 1899 -
11a
Somei M.Saida Y. Heterocycles 1985, 23: 3113 -
11b
Somei M.Yamada F.Hamada H.Kawasaki T. Heterocycles 1989, 29: 643 - 12
Iwao M. Heterocycles 1994, 38: 45 - 13 A similar strategy has previously been reported:
Macor JE.Ogilvie RJ.Wythes MJ. Tetrahedron Lett. 1996, 37: 4289 -
15a
Jeffery T.David M. Tetrahedron Lett. 1998, 39: 5751 -
15b
Jeffery T. Tetrahedron 1996, 52: 10113 - Reviews:
-
15c
De Meijere A.Meyer FE. Angew. Chem., Int. Ed. Engl. 1994, 33: 2379 -
15d
Jeffery T. In Advances in Metal-Organic Chemistry Vol. 5:Liebeskind LS. JAI Press; Greenwich CT: 1996. p.153-260 - 16
Gardiner JM.Loyns CR.Schwalbe CH.Barrett GC.Lowe PR. Tetrahedron 1995, 51: 4101 ; and references therein -
17a
Bosch J.Roca T.Armengol M.Fernandez-Forner D. Tetrahedron 2001, 57: 1041 -
17b
See also ref. 13.
-
19a
Hegedus LS.Mulhern TA.Mori A. J. Org. Chem. 1985, 50: 4282 -
19b
See also ref. 9b.
- 20
Sakamoto T.Kondo Y.Uchiyama M.Yamanaka H. J. Chem. Soc., Perkin Trans. 1 1993, 1941 - 21 For a recent synthesis of 7-hydroxyindole see:
Lerman L.Weinstock-Rosin M.Nudelman A. Synthesis 2004, 3043
References
A search for the indole core in WDI database retrieved more than 3700 hits. See also ref. 5.
14Aniline 2 is also commercially available from Maybridge.
18The NOE experiment proved that the stereochemistry of the exocyclic double bond is as shown in Scheme [3] .
22Removal of the TFA proved more difficult than in the case of amide 11 and was not complete after 2 d using similar conditions (deprotection of 11 takes 15 min at r.t.). We therefore did not attempt the Heck cyclisation on the unprotected aniline.
23
Typical Procedure.
To a solution of methyl 3-bromo-4-[(2E,Z)-2-buten-1-yl(trifluoroacetyl)amino]-5-[(phenylmethyl)oxy]benzoate (20, 12.3 g, 25.3 mmol, 1 equiv) in DMF (150 mL) were added Na2CO3 (6.7 g, 63.3 mmol, 2.5 equiv), Bu4NCl (7.7 g, 27.8 mmol, 1.1 equiv) and Pd(OAc)2 (570 mg, 2.53 mmol, 0.1 equiv) and the resulting mixture was stirred under nitrogen at 100 °C for 2 h then cooled to r.t. and concentrated in vacuo. The residue was partitioned between EtOAc and H2O and the layers were separated. The aqueous phase was extracted with EtOAc and the combined organic phases were washed with H2O and brine, dried over MgSO4 and concentrated in vacuo. Purification of the residue by flash chromatography on silica gel (iso-hexane-EtOAc, 9:1 to 3:1) gave methyl 3-ethyl-7-[(phenylmethyl)oxy]-1H-indole-5-carboxylate (21, 6.7 g, 86%) as a white solid; mp 96-98 °C. MS (ES): m/z = 310.0 [M + H]+. 1H (400 MHz, CDCl3): δ = 1.33 (t, 3 H, J = 7.2 Hz), 2.79 (q, 2 H, J = 7.2 Hz), 3.93 (s, 3 H), 5.23 (s, 2 H), 6.98 (s, 1 H), 7.31-7.51 (m, 6 H), 8.07 (s, 1 H), 8.43 (br s, 1 H). 13C (100.6 MHz, CDCl3): δ = 14.6, 18.3, 52.0, 70.5, 103.6, 115.9, 120.8, 121.2, 121.7, 128.1, 128.2, 128.3, 128.7, 129.8, 136.7, 144.8, 168.4. MS: m/z calcd for C19H20NO3: 310.14377; found: 310.14372.