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dc.creatorChatzileontiadou D.S.M., Parmenopoulou V., Manta S., Kantsadi A.L., Kylindri P., Griniezaki M., Kontopoulou F., Telopoulou A., Prokova H., Panagopoulos D., Boix E., Balatsos N.A.A., Komiotis D., Leonidas D.D.en
dc.date.accessioned2023-01-31T07:44:02Z
dc.date.available2023-01-31T07:44:02Z
dc.date.issued2015
dc.identifier10.1016/j.bioorg.2015.10.007
dc.identifier.issn00452068
dc.identifier.urihttp://hdl.handle.net/11615/72642
dc.description.abstractEosinophil derived neurotoxin (EDN) is an eosinophil secretion protein and a member of the Ribonuclease A (RNase A) superfamily involved in the immune response system and inflammatory disorders. The pathological actions of EDN are strongly dependent on the enzymatic activity and therefore, it is of significant interest to discover potent and specific inhibitors of EDN. In this framework we have assessed the inhibitory potency of triazole double-headed ribonucleosides. We present here an efficient method for the heterologous production and purification of EDN together with the synthesis of nucleosides and their biochemical evaluation in RNase A and EDN. Two groups of double-headed nucleosides were synthesized by the attachment of a purine or a pyrimidine base, through a triazole group at the 3′-C position of a pyrimidine or a purine ribonucleoside, respectively. Based on previous data with mononucleosides these compounds were expected to improve the inhibitory potency for RNase A and specificity for EDN. Kinetics data revealed that despite the rational, all but one, double-headed ribonucleosides were less potent than the respective mononucleosides while they were also more specific for ribonuclease A than for EDN. Compound 11c (9-[3′-[4-[(cytosine-1-yl)methyl]-1,2,3-triazol-1-yl]-β-d-ribofuranosyl]adenine) displayed a stronger preference for EDN than for ribonuclease A and a Ki value of 58 μM. This is the first time that an inhibitor is reported to have a better potency for EDN than for RNase A. The crystal structure of EDN-11c complex reveals the structural basis of its potency and selectivity providing important guidelines for future structure-based inhibitor design efforts. © 2015 Elsevier Inc. All rights reserved.en
dc.language.isoenen
dc.sourceBioorganic Chemistryen
dc.source.urihttps://www.scopus.com/inward/record.uri?eid=2-s2.0-84946563715&doi=10.1016%2fj.bioorg.2015.10.007&partnerID=40&md5=ba8bc0e2679461df2f73c82c8e76a60a
dc.subjecteosinophil protein Xen
dc.subjectnebularineen
dc.subjectpurineen
dc.subjectpyrimidineen
dc.subjectribonuclease Aen
dc.subjectribonucleoside derivativeen
dc.subjecttriazole derivativeen
dc.subjectneurotoxinen
dc.subjectpancreatic ribonucleaseen
dc.subjectpancreatic ribonuclease B, bovineen
dc.subjectribonucleosideen
dc.subjecttriazole derivativeen
dc.subjectArticleen
dc.subjectbiochemical analysisen
dc.subjectcarboxy terminal sequenceen
dc.subjectcomplex formationen
dc.subjectcrystal structureen
dc.subjectenzyme activityen
dc.subjectenzyme inhibitionen
dc.subjectenzyme specificityen
dc.subjectkineticsen
dc.subjectpriority journalen
dc.subjectprotein purificationen
dc.subjectprotein synthesisen
dc.subjectstructure activity relationen
dc.subjectanimalen
dc.subjectantagonists and inhibitorsen
dc.subjectbovineen
dc.subjectchemical structureen
dc.subjectchemistryen
dc.subjectdose responseen
dc.subjecteosinophilen
dc.subjectmetabolismen
dc.subjectstructure activity relationen
dc.subjectAnimalsen
dc.subjectCattleen
dc.subjectDose-Response Relationship, Drugen
dc.subjectEosinophilsen
dc.subjectKineticsen
dc.subjectModels, Molecularen
dc.subjectMolecular Structureen
dc.subjectNeurotoxinsen
dc.subjectRibonuclease, Pancreaticen
dc.subjectRibonucleosidesen
dc.subjectStructure-Activity Relationshipen
dc.subjectTriazolesen
dc.subjectAcademic Press Inc.en
dc.titleTriazole double-headed ribonucleosides as inhibitors of eosinophil derived neurotoxinen
dc.typejournalArticleen


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