Publication:
Elucidation of conformational states, dynamics, and mechanism of binding in human κ-opioid receptor complexes

dc.contributor.authorLeonis, Georgios
dc.contributor.authorAvramopoulos, Aggelos
dc.contributor.authorSalmas, Ramin Ekhteiari
dc.contributor.authorDurdagi, Serdar
dc.contributor.authorYurtsever, Mine
dc.contributor.authorPapadopoulos, Manthos G.
dc.contributor.institutionLeonis, Georgios, Medicinal Chemistry and Biotechnology, National Hellenic Research Foundation, Athens, Greece
dc.contributor.institutionAvramopoulos, Aggelos, Medicinal Chemistry and Biotechnology, National Hellenic Research Foundation, Athens, Greece
dc.contributor.institutionSalmas, Ramin Ekhteiari, Department of Chemistry, İstanbul Teknik Üniversitesi, Istanbul, Turkey
dc.contributor.institutionDurdagi, Serdar, Department of Biophysics, Bahçeşehir Üniversitesi, Istanbul, Turkey
dc.contributor.institutionYurtsever, Mine, Department of Chemistry, İstanbul Teknik Üniversitesi, Istanbul, Turkey
dc.contributor.institutionPapadopoulos, Manthos G., Medicinal Chemistry and Biotechnology, National Hellenic Research Foundation, Athens, Greece
dc.date.accessioned2025-10-05T16:35:14Z
dc.date.issued2014
dc.description.abstractOpioid G protein-coupled receptors (GPCRs) have been implicated in modulating pain, addiction, psychotomimesis, mood and memory, among other functions. We have employed the recently reported crystal structure of the human κ-opioid receptor (κ-OR) and performed molecular dynamics (MD), free energy, and ab initio calculations to elucidate the binding mechanism in complexes with antagonist JDTic and agonist SalA. The two systems were modeled in water and in DPPC lipid bilayers, in order to investigate the effect of the membrane upon conformational dynamics. MD and Atoms in Molecules (AIM) ab initio calculations for the complexes in water showed that each ligand was stabilized inside the binding site of the receptor through hydrogen bond interactions that involved residues Asp138 (with JDTic) and Gln115, His291, Leu212 (with SalA). The static description offered by the crystal structure was overcome to reveal a structural rearrangement of the binding pocket, which facilitated additional interactions between JDTic and Glu209/Tyr139. The role of Glu209 was emphasized, since it belongs to an extracellular loop that covers the binding site of the receptor and is crucial for ligand entrapment. The above interactions were retained in membrane complexes (SalA forms additional hydrogen bonds with Tyr139/312), except the Tyr139 interaction, which is abolished in the JDTic complex. For the first time, we report that JDTic alternates between a V-shape (stabilized via a water-mediated intramolecular interaction) and a more extended conformation, a feature that offers enough suppleness for effective binding. Moreover, MM-PBSA calculations showed that the more efficient JDTic binding to κ-OR compared to SalA (ΔG<inf>JDTic</inf> = -31.6 kcal mol-1, ΔG<inf>SalA</inf> = -9.8 kcal mol-1) is attributed mostly to differences in electrostatic contributions. Importantly, our results are in qualitative agreement with the experiments (ΔG <inf>JDTic,exp</inf> = -14.4 kcal mol-1, ΔG<inf>SalA,exp</inf> = -10.8 kcal mol-1). This study provides previously unattainable information on the dynamics of human κ-OR and insight on the rational design of drugs with improved pharmacological properties. © 2014 American Chemical Society. © 2022 Elsevier B.V., All rights reserved.
dc.identifier.doi10.1021/ci5002873
dc.identifier.endpage2308
dc.identifier.issn1549960X
dc.identifier.issn15499596
dc.identifier.issue8
dc.identifier.pubmed25060329
dc.identifier.scopus2-s2.0-84906551636
dc.identifier.startpage2294
dc.identifier.urihttps://doi.org/10.1021/ci5002873
dc.identifier.urihttps://hdl.handle.net/20.500.14719/12934
dc.identifier.volume54
dc.language.isoen
dc.publisherAmerican Chemical Society
dc.relation.sourceJournal of Chemical Information and Modeling
dc.subject.authorkeywords7-hydroxy-n-(1-((4-(3-hydroxyphenyl)-3,4-dimethyl-1-piperidinyl)methyl)-2-methylpropyl)-1,2,3,4-tetrahydro-3-isoquinolinecarboxamide
dc.subject.authorkeywordsAnalgesics, Opioid
dc.subject.authorkeywordsDiterpenes, Clerodane
dc.subject.authorkeywordsLigands
dc.subject.authorkeywordsNarcotic Antagonists
dc.subject.authorkeywordsPiperidines
dc.subject.authorkeywordsReceptors, Opioid, Kappa
dc.subject.authorkeywordsSalvinorin A
dc.subject.authorkeywordsTetrahydroisoquinolines
dc.subject.authorkeywordsBinding Energy
dc.subject.authorkeywordsCalculations
dc.subject.authorkeywordsConformations
dc.subject.authorkeywordsCrystal Structure
dc.subject.authorkeywordsFree Energy
dc.subject.authorkeywordsHydrogen Bonds
dc.subject.authorkeywordsLigands
dc.subject.authorkeywordsLipid Bilayers
dc.subject.authorkeywordsMolecular Dynamics
dc.subject.authorkeywordsAb Initio Calculations
dc.subject.authorkeywordsConformational Dynamics
dc.subject.authorkeywordsElectrostatic Contributions
dc.subject.authorkeywordsG Protein Coupled Receptors
dc.subject.authorkeywordsHydrogen Bond Interaction
dc.subject.authorkeywordsIntramolecular Interactions
dc.subject.authorkeywordsPharmacological Properties
dc.subject.authorkeywordsStructural Rearrangement
dc.subject.authorkeywordsComplexation
dc.subject.authorkeywords7-hydroxy-n-(1-((4-(3-hydroxyphenyl)-3,4-dimethyl-1-piperidinyl)methyl)-2-methylpropyl)-1,2,3,4-tetrahydro-3-isoquinolinecarboxamide
dc.subject.authorkeywordsClerodane Derivative
dc.subject.authorkeywordsKappa Opiate Receptor
dc.subject.authorkeywordsLigand
dc.subject.authorkeywordsNarcotic Analgesic Agent
dc.subject.authorkeywordsNarcotic Antagonist
dc.subject.authorkeywordsPiperidine Derivative
dc.subject.authorkeywordsProtein Binding
dc.subject.authorkeywordsSalvinorin A
dc.subject.authorkeywordsTetrahydroisoquinoline Derivative
dc.subject.authorkeywordsBinding Site
dc.subject.authorkeywordsChemistry
dc.subject.authorkeywordsHuman
dc.subject.authorkeywordsMolecular Dynamics
dc.subject.authorkeywordsProtein Secondary Structure
dc.subject.authorkeywordsProtein Tertiary Structure
dc.subject.authorkeywordsStatic Electricity
dc.subject.authorkeywordsStructure Activity Relation
dc.subject.authorkeywordsThermodynamics
dc.subject.authorkeywordsAnalgesics, Opioid
dc.subject.authorkeywordsBinding Sites
dc.subject.authorkeywordsDiterpenes, Clerodane
dc.subject.authorkeywordsHumans
dc.subject.authorkeywordsMolecular Dynamics Simulation
dc.subject.authorkeywordsNarcotic Antagonists
dc.subject.authorkeywordsPiperidines
dc.subject.authorkeywordsProtein Binding
dc.subject.authorkeywordsProtein Structure, Secondary
dc.subject.authorkeywordsProtein Structure, Tertiary
dc.subject.authorkeywordsReceptors, Opioid, Kappa
dc.subject.authorkeywordsStatic Electricity
dc.subject.authorkeywordsStructure-activity Relationship
dc.subject.authorkeywordsTetrahydroisoquinolines
dc.subject.authorkeywordsThermodynamics
dc.subject.indexkeywordsBinding energy
dc.subject.indexkeywordsCalculations
dc.subject.indexkeywordsConformations
dc.subject.indexkeywordsCrystal structure
dc.subject.indexkeywordsFree energy
dc.subject.indexkeywordsHydrogen bonds
dc.subject.indexkeywordsLigands
dc.subject.indexkeywordsLipid bilayers
dc.subject.indexkeywordsMolecular dynamics
dc.subject.indexkeywordsAb initio calculations
dc.subject.indexkeywordsConformational dynamics
dc.subject.indexkeywordsElectrostatic contributions
dc.subject.indexkeywordsG protein coupled receptors
dc.subject.indexkeywordsHydrogen bond interaction
dc.subject.indexkeywordsIntramolecular interactions
dc.subject.indexkeywordsPharmacological properties
dc.subject.indexkeywordsStructural rearrangement
dc.subject.indexkeywordsComplexation
dc.subject.indexkeywords7-hydroxy-N-(1-((4-(3-hydroxyphenyl)-3,4-dimethyl-1-piperidinyl)methyl)-2-methylpropyl)-1,2,3,4-tetrahydro-3-isoquinolinecarboxamide
dc.subject.indexkeywordsclerodane derivative
dc.subject.indexkeywordskappa opiate receptor
dc.subject.indexkeywordsligand
dc.subject.indexkeywordsnarcotic analgesic agent
dc.subject.indexkeywordsnarcotic antagonist
dc.subject.indexkeywordspiperidine derivative
dc.subject.indexkeywordsprotein binding
dc.subject.indexkeywordssalvinorin A
dc.subject.indexkeywordstetrahydroisoquinoline derivative
dc.subject.indexkeywordsbinding site
dc.subject.indexkeywordschemistry
dc.subject.indexkeywordshuman
dc.subject.indexkeywordsmolecular dynamics
dc.subject.indexkeywordsprotein secondary structure
dc.subject.indexkeywordsprotein tertiary structure
dc.subject.indexkeywordsstatic electricity
dc.subject.indexkeywordsstructure activity relation
dc.subject.indexkeywordsthermodynamics
dc.subject.indexkeywordsAnalgesics, Opioid
dc.subject.indexkeywordsBinding Sites
dc.subject.indexkeywordsDiterpenes, Clerodane
dc.subject.indexkeywordsHumans
dc.subject.indexkeywordsMolecular Dynamics Simulation
dc.subject.indexkeywordsNarcotic Antagonists
dc.subject.indexkeywordsPiperidines
dc.subject.indexkeywordsProtein Binding
dc.subject.indexkeywordsProtein Structure, Secondary
dc.subject.indexkeywordsProtein Structure, Tertiary
dc.subject.indexkeywordsReceptors, Opioid, kappa
dc.subject.indexkeywordsStatic Electricity
dc.subject.indexkeywordsStructure-Activity Relationship
dc.subject.indexkeywordsTetrahydroisoquinolines
dc.subject.indexkeywordsThermodynamics
dc.titleElucidation of conformational states, dynamics, and mechanism of binding in human κ-opioid receptor complexes
dc.typeArticle
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dspace.entity.typePublication
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