Evaluation of models of electrostatic interactions in proteins

被引:39
|
作者
Morozov, AV
Kortemme, T
Baker, D [1 ]
机构
[1] Univ Washington, Dept Biochem, Seattle, WA 98195 USA
[2] Univ Washington, Dept Phys, Seattle, WA 98195 USA
来源
JOURNAL OF PHYSICAL CHEMISTRY B | 2003年 / 107卷 / 09期
关键词
D O I
10.1021/jp0267555
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 conformations of proteins and protein-protein complexes observed in nature must be low in free energy relative to alternative (not observed) conformations, and it is plausible (but not absolutely necessary) that the electrostatic free energies of experimentally observed conformations are also low relative to other conformations. Starting from this assumption, we evaluate alternative models of electrostatic interactions in proteins by comparing the electrostatic free energies of native, nativelike, and non-native structures. We observe that the total electrostatic free energy computed using the Poisson-Boltzmann (PB) equation or the generalized Born (GB) model exhibits free energy gaps that are comparable to, or smaller than, the free energy gaps resulting from Coulomb interactions alone. Detailed characterization of the contributions of different atom types to the total electrostatic free energy showed that, although for most atoms unfavorable solvation energies associated with atom burial are more than compensated by attractive Coulomb interactions, Coulomb interactions do not-become more favorable with burial for certain backbone atom types, suggesting inaccuracies in the treatment of backbone electrostatics. Sizable free energy gaps are obtained using simple distance-dependent dielectric models, suggesting their usefulness in approximating the attenuation of long range Coulomb interactions by induced polarization effects. Hydrogen bonding interactions appear to be better modeled with an explicitly orientation-dependent hydrogen bonding potential than with any of the purely electrostatic models of hydrogen bonds, as there are larger free energy gaps with the former. Finally, a combined electrostatics-hydrogen bonding potential is developed that appears to better capture the free energy differences between native, nativelike, and non-native proteins and protein-protein complexes than electrostatic or hydrogen bonding models alone.
引用
收藏
页码:2075 / 2090
页数:16
相关论文
共 50 条
  • [31] Electrostatic interactions of charged dipolar proteins in reverse micelles
    Piñero, J
    Bhuiyan, LB
    Bratko, D
    JOURNAL OF CHEMICAL PHYSICS, 2004, 120 (24): : 11941 - 11947
  • [32] Uncovering Specific Electrostatic Interactions in the Denatured States of Proteins
    Shen, Jana K.
    BIOPHYSICAL JOURNAL, 2010, 99 (03) : 924 - 932
  • [33] THE MODELING OF ELECTROSTATIC INTERACTIONS IN THE FUNCTION OF GLOBULAR-PROTEINS
    ROGERS, NK
    PROGRESS IN BIOPHYSICS & MOLECULAR BIOLOGY, 1986, 48 (01): : 37 - 66
  • [34] Electrostatic interactions in proteins - Binding, titration and stability.
    Jonsson, B
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1997, 214 : 169 - COMP
  • [35] ELECTROSTATIC INTERACTIONS OF PROTEINS AND ION-EXCHANGE SURFACES
    ROUSH, DJ
    GILL, DS
    WILLSON, RC
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1993, 205 : 111 - BIOT
  • [37] A Debye-Huckel theory for electrostatic interactions in proteins
    Ullner, M
    Woodward, CE
    Jonsson, B
    JOURNAL OF CHEMICAL PHYSICS, 1996, 105 (05): : 2056 - 2065
  • [38] Electrostatic interactions between amphoteric latex particles and proteins
    Chern, CS
    Lee, CK
    Chang, CJ
    COLLOID AND POLYMER SCIENCE, 2004, 283 (03) : 257 - 264
  • [39] Electrostatic interactions between amphoteric latex particles and proteins
    Chorng-Shyan Chern
    Cheng-Kang Lee
    Chia-Jung Chang
    Colloid and Polymer Science, 2004, 283 : 257 - 264
  • [40] Electrostatic interactions in molecular recognition of intrinsically disordered proteins
    Yang, Jing
    Zeng, Yifan
    Liu, Yunfei
    Gao, Meng
    Liu, Sen
    Su, Zhengding
    Huang, Yongqi
    JOURNAL OF BIOMOLECULAR STRUCTURE & DYNAMICS, 2020, 38 (16): : 4883 - 4894