American Society of Hirudotherapy

Development, validation, and clinical pharmacokinetic application of UPLC-MS/MS method for hirudin variant in human plasma

Analytical methodology study published in Journal of Chromatography B (2017)

Last Updated: June 18, 2026Reviewed by: ASH Editorial Board
Research article — evidence reviewArticle reference
Evidence: Randomized controlled trialDrug DevelopmentSalivary PharmacologyDong X et al. · Journal of chromatography. B, 2017

Abstract

Recombinant Neorudin (EPR-hirudin, EH), a novel, low-bleeding anticoagulant fusion protein, has been developed as an inactive prodrug that is converted to an active metabolite, hirudin variant 2-Lys47 (HV2), at the thrombus site and is undergoing Phase I clinical trials in China. The goal of our present research was to establish a novel ultra-performance liquid chromatography/tandem mass spectrometry (UPLC-MS/MS) method for simultaneously quantifying EH and HV2 in human serum. Furthermore, the method was used in clinical pharmacokinetic study after validation. The stock and dilute working solutions were dissolved in methanol/water (1/1, v/v) to avoid their adsorption. The internal standard (IS) used, had a similar structure to that of EH. The serum sample pretreatment involved protein precipitation with methanol. The volume ratio of the precipitating solvent to the serum sample was 3:1 (300μL methanol: 100μL serum sample). The chromatographic separation was performed using a 300Å C18 column using a multi-step gradient with a mobile phase consisting of acetonitrile:water containing 0.1% formic acid. The detection was carried out using an ESI source in the positive multiple reaction monitoring (MRM) mode. The within and between run precision were in the range of 3.5%-10.3% for EH and 3.3%-8.8% for HV2, and the accuracy of both EH and HV2 was between -4.6% and 2.1%. The extraction recoveries and matrix effect at three quality control (QC) levels for EH and HV2 were satisfactory. The stabilities of EH and HV2 during the storage, preparation, and analysis were confirmed, and the carryover also proved to be acceptable. This technique was efficiently used in Phase I clinical pharmacokinetic trials of EH following intravenous administration of 0.2mg/kg to healthy volunteers.

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

Publication typeJournal ArticleRandomized Controlled Trial
Indexed MeSH termsChromatography, High Pressure LiquidHirudinsHumansLinear ModelsRecombinant ProteinsReproducibility of ResultsSensitivity and SpecificityTandem Mass Spectrometry

Summary

Develops and validates a UPLC-MS/MS assay for quantifying hirudin variant in human plasma — applied to neorudin clinical PK study. LLOQ 5 ng/mL with linear range to 5,000 ng/mL.

Why This Matters for Hirudotherapy

This study developed and validated an ultra-performance liquid chromatography-tandem mass spectrometry (UPLC-MS/MS) method for simultaneously quantifying recombinant neorudin (EPR-hirudin, EH) and its active metabolite hirudin variant 2-Lys47 (HV2) in human serum, then applied the method in a Phase I clinical pharmacokinetic trial following intravenous administration of 0.2 mg/kg EH to healthy volunteers. The method demonstrated satisfactory precision, accuracy, extraction recovery, matrix effect, stability, and carryover performance for both analytes. This work is relevant to ASH's domain as it advances the analytical tools needed to study hirudin variant pharmacokinetics, supporting the clinical development pipeline of leech-derived anticoagulant molecules. However, the study is purely analytical and pharmacokinetic in nature, conducted with healthy volunteers and a synthetic recombinant fusion protein, not leech therapy or natural leech secretome preparations, and provides no efficacy or clinical outcome data.

Citation

Development, validation, and clinical pharmacokinetic application of UPLC-MS/MS method for hirudin variant in human plasma.

Dong X et al. · Journal of chromatography. B, 2017

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

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