4.4 Article

Impact of human galectin-1 binding to saccharide ligands on dimer dissociation kinetics and structure

期刊

GLYCOBIOLOGY
卷 26, 期 12, 页码 1317-1327

出版社

OXFORD UNIV PRESS INC
DOI: 10.1093/glycob/cww052

关键词

carbohydrate-binding protein; dimer dissociation kinetics; galectin-1; lattices; ligand-binding kinetics

资金

  1. University of Buenos Aires (UBACyT) [20020120100276]
  2. Argentinean National Agency for Promotion of Science and Technology (PICT) [1584]
  3. Argentinian National Research Council [PIP 112 20110100850]
  4. Sales Foundation
  5. Bunge & Born Foundation

向作者/读者索取更多资源

Endogenous lectins can control critical biological responses, including cell communication, signaling, angiogenesis and immunity by decoding glycan-containing information on a variety of cellular receptors and the extracellular matrix. Galectin-1 (Gal-1), a prototype member of the galectin family, displays only one carbohydrate recognition domain and occurs in a subtle homodimerization equilibrium at physiologic concentrations. Such equilibrium critically governs the function of this lectin signaling by allowing tunable interactions with a preferential set of glycosylated receptors. Here, we used a combination of experimental and computational approaches to analyze the kinetics and mechanisms connecting Gal-1 ligand unbinding and dimer dissociation processes. Kinetic constants of both processes were found to differ by an order of magnitude. By means of steered molecular dynamics simulations, the ligand unbinding process was followed monitoring water occupancy changes. By determining the water sites in a carbohydrate binding place during the unbinding process, we found that rupture of ligand-protein interactions induces an increase in energy barrier while ligand unbinding process takes place, whereas the entry of water molecules to the binding groove and further occupation of their corresponding water sites contributes to lowering of the energy barrier. Moreover, our findings suggested local asymmetries between the two subunits in the dimer structure detected at a nanosecond timescale. Thus, integration of experimental and computational data allowed a more complete understanding of lectin ligand binding and dimerization processes, suggesting new insights into the relationship between Gal-1 structure and function and renewing the discussion on the biophysics and biochemistry of lectin-ligand lattices.

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