Probing the hirudin-thrombin interaction by incorporation of noncoded amino acids and molecular dynamics simulation
Biochemistry article published in Biochemistry (2002)
Abstract
Thrombin is a primary target for the development of novel anticoagulants, since it plays two important and opposite roles in hemostasis: procoagulant and anticoagulant. All thrombin functions are influenced by Na+ binding, which triggers the transition of this enzyme from an anticoagulant (slow) form to a procoagulant (fast) form. In previous studies, we have conveniently produced by chemical synthesis analogues of the N-terminal fragment 1-47 of hirudin HM2 containing noncoded amino acids and displaying up to approximately 2700-fold more potent antithrombin activity, comparable to that of full-length hirudin. In the work presented here, we have exploited the versatility of chemical synthesis to probe the structural and energetic properties of the S3 site of thrombin through perturbations introduced in the structure of hirudin fragment 1-47. In particular, we have investigated the effects of systematic replacement of Tyr3 with noncoded amino acids retaining the aromatic nucleus of Tyr, as well as similar hydrophobic and steric properties, but possessing different electronic (e.g., p-fluoro-, p-iodo-, or p-nitro-Phe), charge (p-aminomethyl-Phe), or conformational (homo-Phe) properties. Our results indicate that the affinity of fragment 1-47 for thrombin is proportional to the desolvation free energy change upon complex formation, and is inversely related to the electric dipole moment of the amino acid side chain at position 3 of hirudin. In this study, we have also identified the key features that are responsible for the preferential binding of hirudin to the procoagulant (fast) form of thrombin. Strikingly, shaving at position 3, by Tyr --> Ala exchange, abolishes the differences in the affinity for thrombin allosteric forms, whereas a bulkier side chain (e.g., beta-naphthylalanine) improves binding preferentially to the fast form. These results provide strong, albeit indirect, evidence that the procoagulant (fast) form of thrombin is in a more open and accessible conformation with respect to the less forgiving structure it acquires in the slow form. This view is also supported by the results of molecular dynamics simulations conducted for 18 ns on free thrombin in full explicit water, showing that after approximately 5 ns thrombin undergoes a significant conformational transition, from a more open conformation (which we propose can be related to the fast form) to a more compact and closed one (which we propose can be related to the slow form). This transition mainly involves the Trp148 and Trp60D loop, the S3 site, and the fibrinogen binding site, whereas the S1 site, the Na+-binding site, and the catalytic pocket remain essentially unchanged. In particular, our data indicate that the S3 site of the enzyme is less accessible to water in the putative slow form. This structural picture provides a reasonable molecular explanation for the fact that physiological substrates related to the procoagulant activity of thrombin (fibrinogen, thrombin receptor 1, and factor XIII) orient a bulky side chain into the S3 site of the enzyme. Taken together, our results can have important implications for the design of novel thrombin inhibitors, of practical utility in the treatment of coagulative disorders.
Abstract sourced from PubMed (NCBI) for the cited record. See the original publication for the authoritative version.
Resumen
Systematic Tyr3 replacement with noncoded amino acids in hirudin fragment 1-47 plus 18-ns molecular dynamics on free thrombin reveal the procoagulant fast-form S3 pocket as the conformational target most accessible to bulky substrates.
Por qué esto importa para la hirudoterapia
This biophysical study probes the hirudin–thrombin interaction using synthetic analogues of the N-terminal fragment 1–47 of hirudin HM2, incorporating noncoded amino acid substitutions at position 3 (Tyr3) with varying electronic, charge, and conformational properties. The investigators found that fragment affinity for thrombin correlates with desolvation free energy and is inversely related to the side-chain electric dipole moment at position 3, and they identified key structural features responsible for hirudin's preferential binding to the procoagulant (fast) form of thrombin—supported by 18-ns molecular dynamics simulations. For ASH's domain, this work provides molecular-level insight into the mechanism of the leech-derived anticoagulant hirudin. Caveat: this is an in vitro structural and computational study; it does not involve leech therapy, clinical application, or whole-organism experiments.
Citación
Probing the hirudin-thrombin interaction by incorporation of noncoded amino acids and molecular dynamics simulation.
De Filippis V, Colombo G, Russo I, Spadari B, Fontana A · Biochemistry, 2002
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Añadido a la biblioteca ASH: May 26, 2026 · Última actualización del sitio: June 18, 2026