Binding of Echinomycin to d(GCGC)2and d(CCGG)2: Distinct Stacking Interactions Dictate the Sequence-Dependent Formation of Hoogsteen Base Pairs
- 1 August 1994
- journal article
- research article
- Published by Taylor & Francis in Journal of Biomolecular Structure and Dynamics
- Vol. 12 (1) , 111-129
- https://doi.org/10.1080/07391102.1994.10508091
Abstract
Molecular dynamics simulations have been used to explore the behavior of the complexes of echinomycin with the DNA tetramers d(GCGC)2 and d(CCGG)2 in which the terminal bases have been paired according to either a Hoogsteen or a Watson-Crick hydrogen bonding scheme. The energy of the four resulting complexes has been monitored along the dynamics trajectories and the interaction energy between echinomycin and DNA has been decomposed into contributions arising from the planar aromatic systems and the depsipeptide part of the antibiotic. Our calculations predict a large increase in overall stabilization upon protonation of the terminal cytosines and subsequent Hoogsteen pair formation in the complex of echinomycin with d(GCGC)2 but not with d(CCGG)2, in agreement with the experimental evidence [Gao and Patel, Quart. Rev. Biophys. 22,93-13 8 (1989)]. The conformational preferences appear to arise mainly from differential stacking interactions in which the electrostatic component is shown to play a dominant role. Differences in hydrogen bonding patterns are also found among the complexes and these are compared in relation to available crystal structures. The binding of echinomycin to DNA appears as a complex process involving many interrelated variables.Keywords
This publication has 40 references indexed in Scilit:
- Footprinting titration studies on the binding of echinomycin to DNA incapable of forming Hoogsteen base pairsBiochemistry, 1993
- Proton NMR study of the [d(ACGTATACGT)]2-2echinomycin complex: conformational changes between echinomycin binding sitesNucleic Acids Research, 1992
- The DNA sequence at echinomycin binding sites determines the structural changes induced by drug binding: NMR studies of echinomycin binding to [d(ACGTACGT)]2 and [d(TCGATCGA)]2Biochemistry, 1991
- Antitumour drug–DNA interactions: NMR studies of echinomycin and chromomycin complexesQuarterly Reviews of Biophysics, 1989
- NMR studies of echinomycin bisintercalation complexes with d(A1-C2-G3-T4) and d(T1-C2-G3-A4) duplexes in aqueous solution: sequence-dependent formation of Hoogsteen A1.cntdot.T4 and Watson-Crick T1.cntdot.A4 base pairs flanking the bisintercalation siteBiochemistry, 1988
- Interactions of Quinoxaline Antibiotic and DNA.: The Molecular Structure of a Triostin A—d(GCGTACGC) ComplexJournal of Biomolecular Structure and Dynamics, 1986
- Non-Watson-Crick G ⋅ C and A ⋅ T Base Pairs in a DNA-Antibiotic ComplexScience, 1986
- A comparison of the structure of echinomycin and triostin A complexed to a DNA fragmentNucleic Acids Research, 1985
- The Molecular Structure of a DNA-Triostin A ComplexScience, 1984
- The structure of crystals containing a hydrogen-bonded complex of 1-methylthymine and 9-methyladenineActa Crystallographica, 1959