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PMID: 10686103 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Thermodynamics of DNA binding and condensation: isothermal titration calorimetry and electrostatic mechanism.

Journal of molecular biology ·Vol. 296 ·No. 4 ·2000-03-03 ·Pages 1053-63

Matulis D, Rouzina I, Bloomfield VA

Abstract

The thermodynamics of binding of the trivalent cations cobalt hexammine and spermidine to plasmid DNA was studied by isothermal titration calorimetry. Two stages were observed in the course of titration, the first attributed to cation binding and the second to DNA condensation. A standard calorimetric data analysis was extended by applying an electrostatic binding model, which accounted for most of the observed data. Both the binding and condensation reactions were entropically driven (TDeltaS approximately +10 kcal/mol cation) and enthalpically opposed (DeltaH approximately +1 kcal/mol cation). As predicted from their relative sizes, the binding constants of the cations were indistinguishable, but cobalt hexammine had a much greater DNA condensing capacity because it is more compact than spermidine. The dependence of both the free energy of cobalt hexammine binding and the critical cobalt hexammine concentration for DNA condensation on temperature and monovalent cation concentration followed the electrostatic model quite precisely. The heat capacity changes of both stages were positive, perhaps reflecting both the temperature dependence of the dielectric constant of water and the burial of polar surfaces. DNA condensation occurred when about 67 % of the DNA phosphate charge was neutralized by cobalt hexammine and 87 % by spermidine. During condensation, the remaining DNA charge was neutralized.

MeSH Terms
Binding, Competitive Calorimetry Cations/chemistry Cobalt/chemistry,metabolism DNA/chemistry,metabolism Escherichia coli Osmolar Concentration Plasmids Spermidine/chemistry,metabolism Static Electricity Temperature Thermodynamics
Chemicals
Cations hexaamminecobalt(II) Cobalt DNA Spermidine
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Matulis D
Department of Biochemistry Molecular Biology and Biophysics, University of Minnesota, 1479 Gortner Avenue, St. Paul, MN 55108, USA.
Rouzina I
Bloomfield V A
Article Info
Journal
Journal of molecular biology
Abbr.
J Mol Biol
ISSN
0022-2836
Published
2000-03-03
Pages
1053-63
Language
English
Region
England
NLM ID
2985088R
Subset
IM
Grants
NIGMS NIH HHS · GM28093 · United States
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