Dna Dynamics in Aqueous Solution: Opening the Double Helix
- 1 September 1990
- journal article
- research article
- Published by SAGE Publications in The International Journal of Supercomputing Applications
- Vol. 4 (3) , 81-96
- https://doi.org/10.1177/109434209000400309
Abstract
The opening of a DNA base pair is a simple reaction that is a prerequisite for replication, transcription, and other vital biological functions. Understanding the mo lecular mechanisms of biological reactions is crucial for predicting and, ultimately, controlling them. Realistic computer simulations of the reactions can provide the needed understanding. To model even the simplest re action in aqueous solution requires hundreds of hours of supercomputing time. We have used molecular dy namics techniques to simulate fraying of the ends of a six base pair double strand of DNA, [TCGCGA]2, where the four bases of DNA are denoted by T (thymine), C (cytosine), G (guanine), and A (adenine), and to estimate the free energy barrier to this process. The calculations, in which the DNA was surrounded by 2,594 water mol ecules, required 50 hours of CRAY-2 CPU time for every simulated 100 picoseconds. A free energy barrier to fraying, which is mainly characterized by the movement of adenine away from thymine into aqueous environ ment, was estimated to be 4 kcal/mol. Another fraying pathway, which leads to stacking between terminal adenine and thymine, was also observed. These detailed pictures of the motions and energetics of DNA base pair opening in water are a first step toward understanding how DNA will interact with any molecule.Keywords
This publication has 32 references indexed in Scilit:
- Calculations of a list of neighbors in Molecular Dynamics simulationsJournal of Computational Chemistry, 1989
- Chloride ion pairs in waterJournal of the American Chemical Society, 1987
- A Molecular Dynamics Computer Simulation of an Eight‐Base‐Pair DNA Fragment in Aqueous Solution: Comparison with Experimental Two‐Dimensional NMR DataaAnnals of the New York Academy of Sciences, 1986
- Temperature-dependent molecular dynamics and restrained X-ray refinement simulations of a Z-DNA hexamerJournal of Molecular Biology, 1986
- Molecular mechanical studies of base‐pair opening in d(CGCGC):d(GCGCG), dG5·dC5, d(TATAT):d(ATATA), and dA5·dT5 in the B and Z forms of DNABiopolymers, 1984
- Comparison of simple potential functions for simulating liquid waterThe Journal of Chemical Physics, 1983
- Kinetics for exchange of imino protons in the d(C-G-C-G-A-A-T-T-C-G-C-G) double helix and in two similar helices that contain a G.cntdot.T base pair, d(C-G-T-G-A-A-T-T-C-G-C-G), and an extra adenine, d(C-G-C-A-G-A-A-T-T-C-G-C-G)Biochemistry, 1982
- An Infrared Study of Hydrogen Bonding between Adenine and Uracil Derivatives in Chloroform SolutionJournal of the American Chemical Society, 1967
- Association by hydrogen bonding of free nucleosides in non-aqueous solutionJournal of Molecular Biology, 1966
- Interaction and Association of Bases and Nucleosides in Aqueous SolutionsJournal of the American Chemical Society, 1963