Effect of Na+ binding on the conformation, stability and molecular recognition properties of thrombin

Biochem J. 2005 Sep 1;390(Pt 2):485-92. doi: 10.1042/BJ20050252.

Abstract

In the present work, the effect of Na+ binding on the conformational, stability and molecular recognition properties of thrombin was investigated. The binding of Na+ reduces the CD signal in the far-UV region, while increasing the intensity of the near-UV CD and fluorescence spectra. These spectroscopic changes have been assigned to perturbations in the environment of aromatic residues at the level of the S2 and S3 sites, as a result of global rigidification of the thrombin molecule. Indeed, the Na+-bound form is more stable to urea denaturation than the Na+-free form by approximately 2 kcal/mol (1 cal identical with 4.184 J). Notably, the effects of cation binding on thrombin conformation and stability are specific to Na+ and parallel the affinity order of univalent cations for the enzyme. The Na+-bound form is even more resistant to limited proteolysis by subtilisin, at the level of the 148-loop, which is suggestive of the more rigid conformation this segment assumes in the 'fast' form. Finally, we have used hirudin fragment 1-47 as a molecular probe of the conformation of thrombin recognition sites in the fast and 'slow' form. From the effects of amino acid substitutions on the affinity of fragment 1-47 for the enzyme allosteric forms, we concluded that the specificity sites of thrombin in the Na+-bound form are in a more open and permissible conformation, compared with the more closed structure they assume in the slow form. Taken together, our results indicate that the binding of Na+ to thrombin serves to stabilize the enzyme into a more open and rigid conformation.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Amino Acid Substitution
  • Enzyme Stability / drug effects
  • Hirudins / chemistry
  • Hirudins / metabolism
  • Humans
  • Hydrogen-Ion Concentration
  • Protein Binding
  • Protein Conformation / drug effects
  • Sodium / chemistry
  • Sodium / metabolism*
  • Sodium / pharmacology
  • Solutions / chemistry
  • Substrate Specificity / drug effects
  • Thermodynamics
  • Thrombin / chemistry*
  • Thrombin / metabolism*

Substances

  • Hirudins
  • Solutions
  • Sodium
  • Thrombin