Differential stability of DNA crossovers in solution mediated by divalent cations
Open Access
- 9 March 2010
- journal article
- research article
- Published by Oxford University Press (OUP) in Nucleic Acids Research
- Vol. 38 (12) , 4163-4172
- https://doi.org/10.1093/nar/gkq150
Abstract
The assembly of DNA duplexes into higher-order structures plays a major role in many vital cellular functions such as recombination, chromatin packaging and gene regulation. However, little is currently known about the molecular structure and stability of direct DNA–DNA interactions that are required for such functions. In nature, DNA helices minimize electrostatic repulsion between double helices in several ways. Within crystals, B-DNA forms either right-handed crossovers by groove–backbone interaction or left-handed crossovers by groove–groove juxtaposition. We evaluated the stability of such crossovers at various ionic concentrations using large-scale atomistic molecular dynamics simulations. Our results show that right-handed DNA crossovers are thermodynamically stable in solution in the presence of divalent cations. Attractive forces at short-range stabilize such crossover structures with inter-axial separation of helices less than 20 Å. Right-handed crossovers, however, dissociate swiftly in the presence of monovalent ions only. Surprisingly, left-handed crossovers, assembled by sequence-independent juxtaposition of the helices, appear unstable even at the highest concentration of Mg 2+studied here. Our study provides new molecular insights into chiral association of DNA duplexes and highlights the unique role divalent cations play in differential stabilization of crossover structures. These results may serve as a rational basis to understand the role DNA crossovers play in biological processes.Keywords
This publication has 90 references indexed in Scilit:
- Evidence for heteromorphic chromatin fibers from analysis of nucleosome interactionsProceedings of the National Academy of Sciences, 2009
- What controls nucleosome positions?Trends in Genetics, 2009
- Mechanisms of chiral discrimination by topoisomerase IVProceedings of the National Academy of Sciences, 2009
- DNA Attraction in Monovalent and Divalent ElectrolytesJournal of the American Chemical Society, 2008
- A variable topology for the 30‐nm chromatin fibreEMBO Reports, 2007
- Electrostatic free energy landscapes for nucleic acid helix assemblyNucleic Acids Research, 2006
- EM measurements define the dimensions of the “30-nm” chromatin fiber: Evidence for a compact, interdigitated structureProceedings of the National Academy of Sciences, 2006
- Electrostatics of DNA–DNA juxtapositions: consequences for type II topoisomerase functionJournal of Physics: Condensed Matter, 2006
- X-ray structure of a tetranucleosome and its implications for the chromatin fibreNature, 2005
- VMD: Visual molecular dynamicsJournal of Molecular Graphics, 1996