6533b82ffe1ef96bd12953c5

RESEARCH PRODUCT

Kinetic analysis and molecular modeling of the inhibition mechanism of roneparstat (SST0001) on human heparanase

Marco MorEmiliano PavoniDaniele PalaSilvia RivaraGiuseppe GianniniFerdinando Maria MilazzoGiuseppe Roscilli

subject

Protein Conformation alpha-Helical0301 basic medicineSST0001Molecular modelhomology modelingAmino Acid MotifsPlasma protein bindingMolecular Dynamics SimulationBiochemistryMolecular Docking SimulationheparanaseSubstrate Specificity03 medical and health scienceschemistry.chemical_compound0302 clinical medicinePolysaccharidesHumansProtein Interaction Domains and MotifsHeparanaseHomology modelingEnzyme InhibitorsGlucuronidaseBinding Siteskinetic inhibition analysisHeparinComputational BiologyHeparan sulfateRecombinant ProteinsAcidobacteriaMolecular Docking SimulationEnzyme bindingKinetics030104 developmental biologyCarbohydrate SequenceFondaparinuxchemistryBiochemistryStructural Homology ProteinDocking (molecular)030220 oncology & carcinogenesisBiophysicsroneparstatThermodynamicsProtein Conformation beta-StrandORIGINAL ARTICLESProtein Binding

description

Heparanase is a β-d-glucuronidase which cleaves heparan sulfate chains in the extracellular matrix and on cellular membranes. A dysregulated heparanase activity is intimately associated with cell invasion, tumor metastasis and angiogenesis, making heparanase an attractive target for the development of anticancer therapies. SST0001 (roneparstat; Sigma-Tau Research Switzerland S.A.) is a non-anticoagulant 100% N-acetylated and glycol-split heparin acting as a potent heparanase inhibitor, currently in phase I in advanced multiple myeloma. Herein, the kinetics of heparanase inhibition by roneparstat is reported. The analysis of dose-inhibition curves confirmed the high potency of roneparstat (IC50 ≈ 3 nM) and showed, at higher concentrations, a Hill coefficient consistent with the engagement of two molecules of inhibitor. A homology model of human heparanase GS3 construct was built and used for docking experiments with inhibitor fragments. The model has high structural similarity with the recently reported crystal structure of human heparanase. Different interaction schemes are proposed, which support the hypothesis of a complex binding mechanism involving the recruitment of one or multiple roneparstat chains, depending on its concentration. In particular, docking solutions were obtained in which (i) a single roneparstat molecule interacts with both heparin-binding domains (HBDs) of heparanase or (ii) two fragments of roneparstat interact with either HBD-1 or HBD-2, consistent with the possibility of different inhibitor:enzyme binding stoichiometries. This study provides unique insights into the mode of action of roneparstat as well as clues of its interaction with heparanase at a molecular level, which could be exploited to design novel potential inhibitor molecules.

https://doi.org/10.1093/glycob/cww003