Synthesis of Optically Active β-Amino Acid N-Carboxyanhydrides

93106, and Department of Chemistry, University of California, Irvine, California 92697 ... Mary McKiernan, Jacques Huck, Jean-Alain Fehrentz, Mari...
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ORGANIC LETTERS

Synthesis of Optically Active β-Amino Acid N-Carboxyanhydrides

2000 Vol. 2, No. 13 1943-1946

Jianjun Cheng,† Joseph W. Ziller,‡ and Timothy J. Deming*,† Departments of Materials and Chemistry, UniVersity of California, Santa Barbara, Santa Barbara, California 93106, and Department of Chemistry, UniVersity of California, IrVine, California 92697 [email protected] Received May 5, 2000

ABSTRACT

Methodology has been developed for the general synthesis of optically active β-amino acid N-carboxyanhydrides (β-NCAs) through cyclization of Nβ-Boc or Nβ-Cbz β-amino acids using phosphorus tribromide. The formation of β-NCAs was confirmed by spectroscopy as well as an X-ray structural determination of β-homoalanine-N-carboxyanhydride. The β-NCA molecules could be polymerized in good yield to give optically active poly(β-peptides) that adopt stable chiral conformations in solution. For example, helical oligo(L-β-homophenylalanine) was synthesized by polymerization of L-β-homophenylalanine-N-carboxyanhydride.

The synthesis and characterization of oligomers of β-amino acids, so-called β-peptides, has received considerable interest in recent years.1-3 β-Peptides differ from their R-peptide analogues by possessing additional conformational freedom due to an extra backbone R-methylene group. Despite this, β-peptide chains containing as few as six monomer repeats can adopt very stable secondary structures in solution, while R-peptide chains of similar length typically do not.2 Although efficient synthetic methods for preparation of short β-peptides †

University of California, Santa Barbara. University of California, Irvine. (1) (a) Appella, D. H.; Christianson, L. A.; Karle, I. L.; Powell, D. R.; Gellman, S. H. J. Am. Chem. Soc. 1996, 118, 13071-13072. (b) Appella, D. H.; Christianson, L. A.; Klein, D. A.; Powell, D. R.; Huang, X.; Barchi, J. J.; Gellman, S. H. Nature 1997, 387, 381. (c) Gellman, S. H. Acc. Chem. Res. 1998, 31, 173-180. (d) Appella, D. H.; Barchi Jr; J. J.; Durell, S. R.; Gellman, S. H. J. Am. Chem. Soc. 1999, 121, 2309-2310. (e) Porter, E. A.; Wang, X.; Lee, H.; Weisblum, B.; Gellman, S. H. Nature 2000, 404, 565. (2) (a) Seebach, D.; Overhand, M.; Ku¨hnle, F. N. M.; Martinoni, B.; Oberer, L.; Hommel, U.; Widmer, H. HelV. Chim. Acta 1996, 79, 913941. (b) Seebach, D.; Ciceri, P. E.; Overhand, M.; Jaun, B.; Rigo, D.; Oberer, L.; Hommel, U.; Amstutz, R.; Widmer, H. HelV. Chim. Acta 1996, 79, 2043-2067. (c) Seebach, D.; Matthews, J. L. J. Chem. Soc., Chem. Commun. 1997, 2015-2022. (d) Abele, S.; Guichard, G.; Seebach, D. HelV. Chim. Acta 1998, 81, 2141-2156. (e) Seebach, D.; Abele, S.; Sifferlen, T.; Ha¨nggi, M.; Gruner, S.; Seiler, P. HelV. Chim. Acta 1998, 81, 22182243. (f) Gademann, K.; Ernst, M.; Hoyer, D.; Seebach, D. Angew. Chem., Int. Ed. 1999, 38, 1223-1226. ‡

10.1021/ol000122w CCC: $19.00 Published on Web 06/03/2000

© 2000 American Chemical Society

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