Theoretical Assessment of the Oligolysine Model for Ionic Interactions in Protein - DNA Complexes

被引:28
作者
Fenley, Marcia O. [1 ]
Russo, Cristina [1 ]
Manning, Gerald S. [2 ]
机构
[1] Florida State Univ, Inst Mol Biophys, Tallahassee, FL 32306 USA
[2] Rutgers State Univ, Dept Chem & Chem Biol, Piscataway, NJ 08854 USA
关键词
DIVALENT METAL-IONS; COUNTERION-CONDENSATION; BINDING; POLYELECTROLYTES; DISPLACEMENTS; HEPARIN; EXTENT;
D O I
10.1021/jp204915y
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The observed salt dependence of charged ligand binding to polyelectrolytes, such as proteins to DNA or antithrombin to heparin, is often interpreted by means of the "oligolysine model." We review this model as derived entirely within the framework of the counterion condensation theory of polyelectrolytes with no introduction of outside assumptions. We update its comparison with experimental data on the structurally simple systems for which it was originally intended. We then compute the salt dependence of the binding free energy for a variety of protein-DNA complexes with nonlinear Poisson-Boltzmann (NLPB) simulation methods. The results of the NLPB calculations confirm the central prediction of the oligolysine model that the net charge density of DNA remains invariant to protein binding. Specifically, when a cationic protein residue penetrates the layer of counterions condensed on DNA, a counterion is released to bulk solution, and when an anionic protein residue penetrates the condensed counterion layer, an additional counterion is condensed from bulk solution. We also conclude, however, that the cumulative effect of charged protein residues distant from the binding interface makes a significant contribution to the salt dependence of binding, an observation not accommodated by the oligolysine model.
引用
收藏
页码:9864 / 9872
页数:9
相关论文
共 38 条
[1]  
Alberts B., 2002, The shape and structure of proteins, Vfourth, DOI 10.1093/aob/mcg023
[2]   Ionic condensation and charge renormalization in colloidal suspensions [J].
Belloni, L .
COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 1998, 140 (1-3) :227-243
[3]   A new outer boundary formulation and energy corrections for the nonlinear Poisson-Boltzmann equation [J].
Boschitsch, Alexander H. ;
Fenley, Marcia O. .
JOURNAL OF COMPUTATIONAL CHEMISTRY, 2007, 28 (05) :909-921
[4]   A Fast and Robust Poisson-Boltzmann Solver Based on Adaptive Cartesian Grids [J].
Boschitsch, Alexander H. ;
Fenley, Marcia O. .
JOURNAL OF CHEMICAL THEORY AND COMPUTATION, 2011, 7 (05) :1524-1540
[5]   Salt-mediated electrostatics in the association of TATA binding proteins to DNA: A combined molecular mechanics/Poisson-Boltzmann study [J].
Bredenberg, Johan H. ;
Russo, Cristina ;
Fenley, Marcia O. .
BIOPHYSICAL JOURNAL, 2008, 94 (12) :4634-4645
[6]   Electrostatic interactions in biological DNA-related systems [J].
Cherstvy, A. G. .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2011, 13 (21) :9942-9968
[7]   BINDING OF MAGNESIUM AND LANTHANUM IONS TO HEPARIN IN THE PRESENCE OF SODIUM-IONS - A RELATIONSHIP BETWEEN C-13 CHEMICAL-SHIFT DISPLACEMENTS AND COUNTERION CONDENSATION THEORY [J].
DAIS, P ;
PENG, QJ ;
PERLIN, AS .
CANADIAN JOURNAL OF CHEMISTRY, 1987, 65 (08) :1739-1745
[8]   A RELATIONSHIP BETWEEN C-13-CHEMICAL-SHIFT DISPLACEMENTS AND COUNTERION-CONDENSATION THEORY, IN THE BINDING OF CALCIUM-ION BY HEPARIN [J].
DAIS, P ;
PENG, QJ ;
PERLIN, AS .
CARBOHYDRATE RESEARCH, 1987, 168 (02) :163-179
[9]   Fraction of condensed counterions around a charged rod: Comparison of Poisson-Boltzmann theory and computer simulations [J].
Deserno, M ;
Holm, C ;
May, S .
MACROMOLECULES, 2000, 33 (01) :199-206
[10]   INTERACTIONS OF DNA WITH DIVALENT METAL-IONS .1. P-31-NMR STUDIES [J].
GRANOT, J ;
FEIGON, J ;
KEARNS, DR .
BIOPOLYMERS, 1982, 21 (01) :181-201