Torsional Deformation of Double Helix in Interaction and Aggregation of DNA
- 27 April 2004
- journal article
- Published by American Chemical Society (ACS) in The Journal of Physical Chemistry B
- Vol. 108 (20) , 6508-6518
- https://doi.org/10.1021/jp0380475
Abstract
We incorporate sequence-dependent twisting between adjacent base pairs and torsional elasticity of double helix into the theory of DNA-DNA interaction. The results show that pairing and counterion-induced-aggregation of nonhomologous DNA are accompanied by considerable torsional deformation. The deformation tunes negatively charged phosphate strands and positively charged grooves on opposing molecules to stay "in register", substantially reducing nonideality of the helical structure of DNA. Its cost, however, makes interaction between nonhomologous DNA less energetically favorable. In particular, interaction between double helical DNA may result in sequence homology recognition and selective pairing of homologous fragments containing more than 100-200 base pairs. We also find a weak, but potentially measurable, increase in the expected counterion concentration required for aggregation of nonhomologous DNA and slightly higher solubility of such DNA above the critical concentration.Keywords
This publication has 42 references indexed in Scilit:
- Phase Behavior of Columnar DNA AssembliesPhysical Review Letters, 2002
- Positional, Reorientational, and Bond Orientational Order in DNA MesophasesPhysical Review Letters, 2001
- Soft matter under osmotic stressPolymer, 2001
- Refusing to Twist: Demonstration of a Line Hexatic Phase in DNA Liquid CrystalsPhysical Review Letters, 2000
- B-DNA Twisting Correlates with Base-pair MorphologyJournal of Molecular Biology, 1995
- Chromosome pairing via multiple interstitial interactions before and during meiosis in yeastCell, 1994
- Cholesteric helical pitch of near persistence length DNAMacromolecules, 1990
- Polyelectrolyte model of DNASoviet Physics Uspekhi, 1987
- Determination of the amount of homology required for recombination in bacteriophage T4Cell, 1982
- The molecular configuration of deoxyribonucleic acidJournal of Molecular Biology, 1960