Molecular dissection of Na+ binding to thrombin.
Research article published in The Journal of biological chemistry (2004)
Abstract
Na(+) binding near the primary specificity pocket of thrombin promotes the procoagulant, prothrombotic, and signaling functions of the enzyme. The effect is mediated allosterically by a communication between the Na(+) site and regions involved in substrate recognition. Using a panel of 78 Ala mutants of thrombin, we have mapped the allosteric core of residues that are energetically linked to Na(+) binding. These residues are Asp-189, Glu-217, Asp-222, and Tyr-225, all in close proximity to the bound Na(+). Among these residues, Asp-189 shares with Asp-221 the important function of transducing Na(+) binding into enhanced catalytic activity. None of the residues of exosite I, exosite II, or the 60-loop plays a significant role in Na(+) binding and allosteric transduction. X-ray crystal structures of the Na(+)-free (slow) and Na(+)-bound (fast) forms of thrombin, free or bound to the active site inhibitor H-d-Phe-Pro-Arg-chloromethyl-ketone, document the conformational changes induced by Na(+) binding. The slow --> fast transition results in formation of the Arg-187:Asp-222 ion pair, optimal orientation of Asp-189 and Ser-195 for substrate binding, and a significant shift of the side chain of Glu-192 linked to a rearrangement of the network of water molecules that connect the bound Na(+) to Ser-195 in the active site. The changes in the water network and the allosteric core explain the thermodynamic signatures linked to Na(+) binding and the mechanism of thrombin activation by Na(+). The role of the water network uncovered in this study establishes a new paradigm for the allosteric regulation of thrombin and other Na(+)-activated enzymes involved in blood coagulation and the immune response.
Abstract sourced from PubMed (NCBI) for the cited record. See the original publication for the authoritative version.
Summary
Na(+) binding near the primary specificity pocket of thrombin promotes the procoagulant, prothrombotic, and signaling functions of the enzyme. The effect is mediated allosterically by a communication between the Na(+) site and regions involved in substrate recognition.
Why This Matters for Hirudotherapy
This study used a panel of 78 alanine mutants and X-ray crystal structures of Na+-free (slow) and Na+-bound (fast) thrombin forms to map the allosteric core of residues energetically linked to Na+ binding, identifying Asp-189, Glu-217, Asp-222, and Tyr-225 as key components. The findings reveal that the slow-to-fast transition involves formation of the Arg-187:Asp-222 ion pair, optimal orientation of Asp-189 and Ser-195, and a water network connecting bound Na+ to the catalytic Ser-195. The work establishes a new paradigm for allosteric regulation of thrombin and other Na+-activated clotting enzymes. CAVEAT: No hirudin, leech-derived compounds, or hirudotherapy are mentioned in the abstract; this is an in-vitro structural/mutagenesis study with no defensible leech link to ASH's domain.
Citation
Molecular dissection of Na+ binding to thrombin.
Pineda et al. · The Journal of biological chemistry, 2004
Added to ASH library: May 28, 2026 · Site last updated: June 18, 2026