Synthesis of a AT base pair model in DNA and determination of hydrogen bonding strength on the formation of base triplet T:AT in CDCl3

[1]  G. Deslongchamps,et al.  A convergent hydroxyimide module for molecular recognition , 1996 .

[2]  F. Nagatsugi,et al.  Design of a novel artificial nucleobase for the selective formation of a triple-complex with a cytosine-guanine base pair , 1995 .

[3]  Kyu‐Sung Jeong,et al.  Podand ionophores capable of forming cation-binding cavities through intramolecular interactions between the terminal groups , 1995 .

[4]  J. M. Lintuluoto,et al.  Flexible nucleobase receptor — effect of self-preorganization of artificial receptor— , 1994 .

[5]  Jian-sheng Sun,et al.  Oligonucleotide-directed triple-helix formation , 1993 .

[6]  N. Thuong,et al.  Sequence‐Specific Recognition and Modification of Double‐Helical DNA by Oligonucleotides , 1993 .

[7]  Professor Dr. George A. Jeffrey,et al.  Hydrogen Bonding in Biological Structures , 1991, Springer Berlin Heidelberg.

[8]  J. Rebek,et al.  Convergent functional groups XI. Selective binding of guanosine derivatives. , 1991 .

[9]  Michael Famulok,et al.  Convergent functional groups. X. Molecular recognition of neutral substrates , 1991 .

[10]  J. Rebek,et al.  Molecular Recognition. Asymmetric Complexation of Diketopiperazines , 1990 .

[11]  J. Rebek,et al.  Relative hydrogen-bonding affinities of imides and lactams , 1990 .

[12]  J. Atwood Inclusion phenomena and molecular recognition , 1990 .

[13]  C. Wilcox,et al.  Chemistry of synthetic receptors and functional group arrays. 10. Orderly functional group dyads. Recognition of biotin and adenine derivatives by a new synthetic host , 1989 .

[14]  J. Rebek,et al.  Molecular recognition with convergent functional groups. VII. Energetics of adenine binding with model receptors , 1989 .

[15]  P. Dervan,et al.  Sequence-specific cleavage of double helical DNA by triple helix formation. , 1987, Science.

[16]  Wolfram Saenger,et al.  Principles of Nucleic Acid Structure , 1983 .