4.4 Article

Conformational dynamics and thermodynamics of protein-ligand binding studied by NMR relaxation

期刊

BIOCHEMICAL SOCIETY TRANSACTIONS
卷 40, 期 -, 页码 419-423

出版社

PORTLAND PRESS LTD
DOI: 10.1042/BST20110750

关键词

conformational entropy; dynamics; ligand binding; NMR; protein; thermodynamics

资金

  1. Swedish Research Council [2010-4912]
  2. FLAK Research School for Pharmaceutical Sciences at Lund University
  3. Goran Gustafsson Foundation for Research in Natural Sciences and Medicine
  4. Knut and Alice Wallenberg Foundation

向作者/读者索取更多资源

Protein conformational dynamics can be critical for ligand binding in two ways that relate to kinetics and thermodynamics respectively. First, conformational transitions between different substates can control access to the binding site (kinetics). Secondly, differences between free and ligand-bound states in their conformational fluctuations contribute to the entropy of ligand binding (thermodynamics). In the present paper, I focus on the second topic, summarizing our recent results on the role of conformational entropy in ligand binding to Gal3C (the carbohydrate-recognition domain of galectin-3). NMR relaxation experiments provide a unique probe of conformational entropy by characterizing bond-vector fluctuations at atomic resolution. By monitoring differences between the free and ligand-bound states in their backbone and side chain order parameters, we have estimated the contributions from conformational entropy to the free energy of binding. Overall, the conformational entropy of Gal3C increases upon ligand binding, thereby contributing favourably to the binding affinity. Comparisons with the results from isothermal titration calorimetry indicate that the conformational entropy is comparable in magnitude to the enthalpy of binding. Furthermore, there are significant differences in the dynamic response to binding of different ligands, despite the fact that the protein structure is virtually identical in the different protein-ligand complexes. Thus both affinity and specificity of ligand binding to Gal3C appear to depend in part on subtle differences in the conformational fluctuations that reflect the complex interplay between structure, dynamics and ligand interactions.

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