Prediction of the stability of DNA triplexes.
- 30 April 1996
- journal article
- research article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 93 (9) , 4320-4325
- https://doi.org/10.1073/pnas.93.9.4320
Abstract
We present rules that allow one to predict the stability of DNA pyrimidine.purine.pyrimidine (Y.R.Y) triple helices on the basis of the sequence. The rules were derived from van9t Hoff analysis of 23 oligonucleotide triplexes tested at a variety of pH values. To predict the enthalpy of triplex formation (delta H degrees), a simple nearest-neighbor model was found to be sufficient. However, to accurately predict the free energy of the triplex (delta G degrees), a combination model consisting of five parameters was needed. These parameters were (i) the delta G degrees for helix initiation, (ii) the delta G degrees for adding a T-A.T triple, (iii) the delta G degrees for adding a C(+)-G.C triple, (iv) the penalty for adjacent C bases, and (v) the pH dependence of the C(+)-G.C triple9s stability. The fitted parameters are highly consistent with thermodynamic data from the basis set, generally predicting both delta H degrees and delta G degrees to within the experimental error. Examination of the parameters points out several interesting features. The combination model predicts that C(+) -G.C. triples are much more stabilizing than T-A.T triples below pH 7.0 and that the stability of the former increases approximately equal to 1 kcal/mol per pH unit as the pH is decreased. Surprisingly though, the most stable sequence is predicted to be a CT repeat, as adjacent C bases partially cancel the stability of one another. The parameters successfully predict tm values from other laboratories, with some interesting exceptions.Keywords
This publication has 29 references indexed in Scilit:
- Nucleic Acid Hybridization: Triplex Stability and EnergeticsAnnual Review of Biophysics, 1995
- Thermodynamics of an Intramolecular DNA Triple Helix: A Calorimetric and Spectroscopic Study of the pH and Salt Dependence of Thermally Induced Structural TransitionsJournal of Molecular Biology, 1995
- Base Pairing and Steric Interactions between Pyrimidine Strand Bridging Loops and the Purine Strand in DNA Pyrimidine.cntdot.Purine.cntdot.Pyrimidine TriplexesBiochemistry, 1994
- Energetics of a Stable Intramolecular DNA Triple Helix FormationJournal of Molecular Biology, 1993
- Stabilities of double- and triple-strand helical nucleic acidsProgress in Biophysics and Molecular Biology, 1992
- Stability and Properties of Double and Triple Helices: Dramatic Effects of RNA or DNA Backbone CompositionScience, 1992
- Triple Helix-Specific LigandsScience, 1992
- Sequence specificity in triple helix formation: experimental and theoretical studies of the effect of mismatches on triplex stabilityBiochemistry, 1991
- Triple-strand formation in the homopurine:homopyrimidine DNA oligonucleotides d(G-A)4 and d(T-C)4Nature, 1989
- DNA sequence determinants of CAP-induced bending and protein binding affinityNature, 1988