Some thermodynamic effects of varying nonpolar surfaces in protein-ligand interactions

被引:7
|
作者
Cramer, David L. [1 ,2 ]
Cheng, Bo [1 ,2 ]
Tian, Jianhua [1 ,2 ]
Clements, John H. [1 ,2 ]
Wypych, Rachel M. [1 ,2 ]
Martin, Stephen E. [1 ,2 ]
机构
[1] Univ Texas Austin, Dept Chem, Austin, TX 78712 USA
[2] Univ Texas Austin, Inst Cellular & Mol Biol, Austin, TX 78712 USA
基金
美国国家科学基金会; 美国国家卫生研究院;
关键词
Protein-ligand interactions; Grb2; SH2; domain; isothermal titration calorimetry; Thermodynamics; Hydrophobic effects; STRUCTURE-BASED DESIGN; MOLECULAR RECOGNITION; GRB2-SH2; DOMAIN; HEAT-CAPACITY; BINDING; ENTROPY; WATER; DYNAMICS; AFFINITY; FORCE;
D O I
10.1016/j.ejmech.2020.112771
中图分类号
R914 [药物化学];
学科分类号
100701 ;
摘要
Understanding how making structural changes in small molecules affects their binding affinities for targeted proteins is central to improving strategies for rational drug design. To assess the effects of varying the nature of nonpolar groups upon binding entropies and enthalpies, we designed and prepared a set of Grb2-SH2 domain ligands, Ac-pTyr-Ac(6)c-Asn-(CH2)n-R, in which the size and electrostatic nature of R groups at the pTyr+3 site were varied. The complexes of these ligands with the Grb2-SH2 domain were evaluated in a series of studies in which the binding thermodynamics were determined using isothermal titration calorimetry, and binding interactions were examined in crystallographic studies of two different complexes. Notably, adding nonpolar groups to the pTyr+3 site leads to higher binding affinities, but the magnitude and energetic origins of these effects vary with the nature of the R substituent. For example, enhancements to binding affinities using aliphatic R groups are driven by more favorable changes in binding entropies, whereas aryl R groups improve binding free energies through a combination of more favorable changes in binding enthalpies and entropies. However, enthalpy/entropy compensation plays a significant role in these associations and mitigates against any significant variation in binding free energies, which vary by only 0.8 kcal.mol(-1), with changes in the electrostatic nature and size of the R group. Crystallographic studies show that differences in Delta G degrees or Delta H degrees correlate with buried nonpolar surface area, but they do not correlate with the total number of polar or van der Waals contacts. The relative number of ordered water molecules and relative order in the side chains at pTyrthorn3 correlate with differences in -T Delta S degrees. Overall, these studies show that burial of nonpolar surface can lead to enhanced binding affinities arising from dominating entropy- or enthalpy-driven hydrophobic effects, depending upon the electrostatic nature of the apolar R group. (c) 2020 Elsevier Masson SAS. All rights reserved.
引用
收藏
页数:14
相关论文
共 50 条
  • [31] Characterisation of Protein-Ligand Interfaces: Separating Surfaces
    Matthias Keil
    Thomas Exner
    Jürgen Brickmann
    Molecular modeling annual, 1998, 4 (10) : 335 - 339
  • [32] Characterisation of protein-ligand interfaces: Separating surfaces
    Keil, M
    Exner, T
    Brickmann, J
    JOURNAL OF MOLECULAR MODELING, 1998, 4 (10): : 335 - 339
  • [33] Understanding protein-ligand interactions: The price of protein flexibility
    Rauh, D
    Klebe, G
    Stubbs, MT
    JOURNAL OF MOLECULAR BIOLOGY, 2004, 335 (05) : 1325 - 1341
  • [34] Multifunctional monolayer assemblies for reversible direct fluorescence transduction of protein-ligand interactions at surfaces
    Sekar, MMA
    Hampton, PD
    Buranda, T
    López, GP
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1999, 121 (22) : 5135 - 5141
  • [35] Label-Free Assay for Thermodynamic Analysis of Protein-Ligand Interactions: A Multivariate Strategy for Allosteric Ligand Screening
    Gavina, Jennilee M. A.
    Mazhab-Jafari, Mohammad T.
    Melacini, Giuseppe
    Britz-McKibbin, Philip
    BIOCHEMISTRY, 2009, 48 (02) : 223 - 225
  • [36] Scoring Functions for Prediction of Protein-Ligand Interactions
    Wang, Jui-Chih
    Lin, Jung-Hsin
    CURRENT PHARMACEUTICAL DESIGN, 2013, 19 (12) : 2174 - 2182
  • [37] Analysis of protein-ligand interactions by fluorescence polarization
    Rossi, Ana M.
    Taylor, Colin W.
    NATURE PROTOCOLS, 2011, 6 (03) : 365 - 387
  • [38] Quantum computational quantification of protein-ligand interactions
    Kirsopp, Josh J. M.
    Di Paola, Cono
    Manrique, David Zsolt
    Krompiec, Michal
    Greene-Diniz, Gabriel
    Guba, Wolfgang
    Meyder, Agnes
    Wolf, Detlef
    Strahm, Martin
    Ramo, David Munoz
    INTERNATIONAL JOURNAL OF QUANTUM CHEMISTRY, 2022, 122 (22)
  • [39] THERMODYNAMICS OF PROTEIN-LIGAND INTERACTIONS - CALORIMETRIC APPROACHES
    HINZ, HJ
    ANNUAL REVIEW OF BIOPHYSICS AND BIOENGINEERING, 1983, 12 : 285 - 317
  • [40] Specificity and promiscuity in protein-ligand and protein-protein interactions
    Colman, PM
    Smith, BJ
    AUSTRALIAN JOURNAL OF CHEMISTRY, 2003, 56 (08) : 763 - 767