EXTENSION OF SEQUENCE-SPECIFIC RECOGNITION IN THE MINOR-GROOVE OF DNABY PYRROLE-IMIDAZOLE POLYAMIDES TO 9-13 BASE-PAIRS

Citation
Jw. Trauger et al., EXTENSION OF SEQUENCE-SPECIFIC RECOGNITION IN THE MINOR-GROOVE OF DNABY PYRROLE-IMIDAZOLE POLYAMIDES TO 9-13 BASE-PAIRS, Journal of the American Chemical Society, 118(26), 1996, pp. 6160-6166
Citations number
32
Categorie Soggetti
Chemistry
ISSN journal
00027863
Volume
118
Issue
26
Year of publication
1996
Pages
6160 - 6166
Database
ISI
SICI code
0002-7863(1996)118:26<6160:EOSRIT>2.0.ZU;2-A
Abstract
The sequence-specific recognition of the minor groove of DNA by pyrrol e-imidazole polyamides has been extended to 9-13 base pairs (bp). Four polyamides, ImPyPy-Py-PyPyPy-Dp, ImPyPy-beta-PyPyPy-Dp, ImPyPy-beta-P yPyPy-Dp, and ImPyPy-gamma-PyPyPy-Dp (Im = N-methylimidazole, Py = N-m ethylpyrrole, Dp = N,N-dimethylaminopropylamide, G = glycine, beta = b eta-alanine, and gamma = gamma-aminobutyric acid), were synthesized an d characterized with respect to their DNA-binding affinities and speci ficities at sequences of composition 5'-(A,T)G(A,T)(5)C(A,T)-3' (9 bp) and 5'-(A,T)(5)G(A,T)C(A,T)(5)-3' (13 bp). In both sequence contexts, the beta-alanine-linked compound ImPyPy-beta-PyPyPy-Dp has the highes t binding affinity of the four polyamides, binding the 9 bp site 5'-TG TTAAACA-3' (K-a = 8 x 10(8) M(-1)) and the 13 bp site 5'-AAAAAGACAAAAA -3' (K-a = 5 x 10(9) M(-1)) with affinities higher than the formally N -methylpyrrole-linked polyamide ImPyPy-Py-PyPyPy-Dp by factors of simi lar to 8 and similar to 85, respectively (10 mM Tris . HCl, 10 mM KCl, 10 mM MgCl, and 5 mM CaCl2, pH 7.0). The binding data for ImPyPy-gamm a-PyPyPy-Dp, which has been shown previously to bind DNA in a ''hairpi n'' conformation, indicates that gamma-aminobutyric acid does not effe ctively link polyamide subunits in an extended conformation. These res ults expand the binding site size targetable with pyrrole-imidazole po lyamides and provide structural elements that will facilitate the desi gn of new polyamides targeted to other DNA sequences.