American Society of Hirudotherapy

Redesigning allosteric activation in an enzyme

Research article published in Proceedings of the National Academy of Sciences of the United States of America (2011)

Last Updated: June 18, 2026Reviewed by: ASH Editorial Board
Research article — evidence reviewArticle reference
Evidence: Preclinical (animal)Drug DevelopmentSalivary PharmacologyRana S et al. · Proceedings of the National Academy of Sciences of the United States of America, 2011

Abstract

Enzyme activation by monovalent cations is widely documented in plants and the animal world. In type II enzymes, activation entails two steps: binding of the monovalent cation to its allosteric site and transduction of this event into enhanced catalytic activity. The effect has exquisite specificity for either Na(+) or K(+), the most abundant cations present in physiological environments. Enzymes requiring K(+) such as kinases and molecular chaperones are not activated as well or at all by the larger cation Cs(+) or the smaller cations Na(+) and Li(+). Enzymes requiring Na(+) such as β-galactosidase and clotting proteases are not activated as well by Li(+), or the larger cations K(+), Rb(+), and Cs(+). Efforts to switch specificity between Na(+) and K(+) in this large class of enzymes and completely redesign the mechanism of allosteric transduction leading to enhanced catalytic activity have so far been unsuccessful. Here we show how mutagenesis of two loops defining the Na(+) binding site of thrombin, a Na(+)-activated clotting protease, generates a construct that is most active in the presence of K(+) toward synthetic and physiological substrates. The effect is the result of a higher binding affinity and more efficient allosteric transduction of binding into enhanced catalytic activity for K(+) compared to Na(+), which represents a complete reversal of the properties of wild type. In addition, the construct features altered specificity toward physiological substrates resulting in a significant anticoagulant profile. The findings are relevant to all Na(+)-activated proteases involved in blood coagulation and the complement system.

Abstract sourced from PubMed (NCBI) for the cited record. See the original publication for the authoritative version.

Publication typeJournal ArticleResearch Support, N.I.H., Extramural
Indexed MeSH termsAllosteric RegulationAllosteric SiteAmino Acid SequenceAnimalsBinding SitesBlood CoagulationCationsEnzyme ActivationFibrinogenHirudinsModels, MolecularMolecular Sequence Data

Summary

Enzyme activation by monovalent cations is widely documented in plants and the animal world.

Why This Matters for Hirudotherapy

This study investigated the allosteric activation of thrombin, a Na+-activated clotting protease, demonstrating how mutagenesis of two loops defining the Na+ binding site generates a construct that is preferentially activated by K+ rather than Na+. The construct exhibits altered specificity toward physiological substrates, resulting in a significant anticoagulant profile and representing a complete reversal of wild-type properties, with findings relevant to Na+-activated proteases involved in blood coagulation and the complement system. The abstract provides no data on leeches, hirudotherapy, hirudin, or any components of the leech secretome. Therefore, this article has no apparent relevance to the American Society of Hirudotherapy or the therapeutic applications of leech therapy.

Citation

Redesigning allosteric activation in an enzyme

Rana S et al. · Proceedings of the National Academy of Sciences of the United States of America, 2011

Added to ASH library: May 27, 2026 · Site last updated: June 18, 2026

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