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104. Sessler, J.L., Weghorn, S.J., Lynch, V.M., and Johnson, M.R. (1994) Turcasarin, the largest
expanded porphyrin to date. Angew. Chem. Int. Ed. , 33 , 1509-1512.
105. Gale, P.A., Navakhun, K., Camiolo, S. et al. (2002) Anion-anion assembly: a new class of
anionic supramolecular polymer containing 3,4-Dichloro-2,5-diamido-substituted pyrrole
anion dimers. J. Am. Chem. Soc. , 124 , 11228-11229.
106. Maeda, H. and Kusunose, Y. (2005) Dipyrrolyldiketone difluoroboron complexes: novel anion
sensors with CH?X interactions. Chem. Eur. J. , 11 , 5661-5666.
107. (a) Guichard, G., Zerbib, A., Leal, F.-A. et al. (2000) Melanoma peptide MART-1(27-35)
analogues with enhanced binding capacity to the human class I histocompatibility molecule
HLA-A2 by introduction of a b-amino acid residue: implications for recognition by tumor-
infiltrating lymphocytes. J. Med. Chem. , 43 , 3803-3808; (b) Reinelt, S., Marti, M., Dedier, S.
et al. (2001) Protein structure and folding. J. Biol. Chem. , 276 , 24525-24530.
108. Schmitt, M.A., Weisblum, B., and Gellman, S.H. (2007) Interplay among folding, sequence,
and lipophilicity in the antibacterial and hemolytic activities of a/b-peptides. J. Am. Chem.
Soc. , 129 , 417-428.
109. Ahmed, S. and Kaur, K. (2009) The proteolytic stability and cytotoxicity studies of L -aspartic
acid and L -diaminopropionic acid derived b-peptides and a mixed a/b-peptide. Chem. Biol.
Drug. Des. , 73 , 545-552.
110. Schmitt, M.A., Weisblum, B., and Gellman, S.H. (2004) Unexpected relationships between
structure and function in a,b-peptides: antimicrobial foldamers with heterogeneous back-
bones. J. Am. Chem. Soc. , 126 , 6848-6849.
111. Mowery, B.P., Lee, S.E., Kissounko, D.A. et al. (2007) Mimicry of antimicrobial host-defense
peptides by random copolymers. J. Am. Chem. Soc. , 129 , 15474-15476.
112. Bryson, J.W., Betz, S.F., Lu, H.S. et al. (1995) Protein design: a hierarchic approach. Science ,
270 , 935-941.
113. Chakraborty, S., Yudenfreund Kravitz, J., Thulstrup, P.W. et al. (2011) Design of a three-helix
bundle capable of binding heavy metals in a triscysteine environment. Angew. Chem. Int. Ed. ,
50 , 2049-2053.
114. (a) Daniels, D.S., Petersson, E.J., Qiu, J.X., and Schepartz, A. (2007) High-resolution structure
of a b-peptide bundle. J. Am. Chem. Soc. , 129 , 1532-1533; (b) Cheng, R.P. and DeGrado, W.
F. (2002) Long-range interactions stabilize the fold of a non-natural oligomer. J. Am. Chem.
Soc. , 124 , 11564-11565. (c) Raguse, T.L., Lai, J.R., LePlae, P.R., and Gellman, S.H. (2001)
Toward b-peptide tertiary structure: self-association of an amphiphilic 14-helix in aqueous
solution. Org. Lett. , 3 , 3963-3966.
115. (a) Craig, C.J., Goodman, J.L., and Schepartz, A. (2011) Enhancing b3-peptide bundle stabil-
ity by design. ChemBioChem , 12 , 1035-1038; (b) Daniels, D.S., Petersson, E.J., Qiu, J.X., and
Schepartz, A. (2007) High-resolution structure of a b-peptide bundle. J. Am. Chem. Soc. , 129 ,
1532-1533; (c) Goodman, J.L., Molski, M.A., Qiu, J., and Schepartz, A. (2008) Tetrameric
b3-peptide bundles. ChemBioChem , 9 , 1576-1578; (d) Goodman, J.L., Petersson, E.J.,
Daniels, D.S. et al. (2007) Biophysical and structural characterization of a robust octameric
b-peptide bundle. J. Am. Chem. Soc. , 129 , 14746-14751.
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