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dc.creatorBrito-Sánchez Y.
dc.creatorMarrero-Ponce Y.
dc.creatorBarigye S.J.
dc.creatorYaber Goenaga, Iván
dc.creatorMorell Pérez C.
dc.creatorLe-Thi-Thu H.
dc.creatorCherkasov A.
dc.date.accessioned2020-03-26T16:32:46Z
dc.date.available2020-03-26T16:32:46Z
dc.date.issued2015
dc.identifier.citationMolecular Informatics; Vol. 34, Núm. 5; pp. 308-330
dc.identifier.issn18681743
dc.identifier.urihttps://hdl.handle.net/20.500.12585/9016
dc.description.abstractIn the present report, the challenging task of drug delivery across the blood-brain barrier (BBB) is addressed via a computational approach. The BBB passage was modeled using classification and regression schemes on a novel extensive and curated data set (the largest to the best of our knowledge) in terms of log BB. Prior to the model development, steps of data analysis that comprise chemical data curation, structural, cutoff and cluster analysis (CA) were conducted. Linear Discriminant Analysis (LDA) and Multiple Linear Regression (MLR) were used to fit classification and correlation functions. The best LDA-based model showed overall accuracies over 85% and 83% for the training and test sets, respectively. Also a MLR-based model with acceptable explanation of more than 69% of the variance in the experimental log BB was developed. A brief and general interpretation of proposed models allowed the estimation on how 'near' our computational approach is to the factors that determine the passage of molecules through the BBB. In a final effort some popular and powerful Machine Learning methods were considered. Comparable or similar performance was observed respect to the simpler linear techniques. Most of the compounds with anomalous behavior were put aside into a set denoted as controversial set and discussion regarding to these compounds is provided. Finally, our results were compared with methodologies previously reported in the literature showing comparable to better results. The results could represent useful tools available and reproducible by all scientific community in the early stages of neuropharmaceutical drug discovery/development projects. © 2015 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim.eng
dc.format.mediumRecurso electrónico
dc.format.mimetypeapplication/pdf
dc.language.isoeng
dc.publisherWiley-VCH Verlag
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/4.0/
dc.sourcehttps://www.scopus.com/inward/record.uri?eid=2-s2.0-84930640106&doi=10.1002%2fminf.201400118&partnerID=40&md5=cc3e982e93f411ec6d4cc2f7cece3f6a
dc.titleTowards better BBB passage prediction using an extensive and curated data set
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datacite.rightshttp://purl.org/coar/access_right/c_16ec
oaire.resourceTypehttp://purl.org/coar/resource_type/c_6501
oaire.versionhttp://purl.org/coar/version/c_970fb48d4fbd8a85
dc.type.driverinfo:eu-repo/semantics/article
dc.type.hasversioninfo:eu-repo/semantics/publishedVersion
dc.identifier.doi10.1002/minf.201400118
dc.subject.keywordsBBB endpoint
dc.subject.keywordsBlood£brain barrier
dc.subject.keywordsDragon descriptor
dc.subject.keywordsLinear discriminant analysis
dc.subject.keywordsMultiple linear regression
dc.subject.keywordsP-glycoprotein
dc.subject.keywordsQuantitative structure pharmacokinetic (property) relationship
dc.subject.keywordsCentral nervous system agents
dc.subject.keywordsMultidrug resistance protein
dc.subject.keywordsOctanol
dc.subject.keywordsWater
dc.subject.keywordsArticle
dc.subject.keywordsBlood-Brain Barrier
dc.subject.keywordsBrain disease
dc.subject.keywordsCentral nervous system
dc.subject.keywordsChemical structure
dc.subject.keywordsCluster analysis
dc.subject.keywordsComputer program
dc.subject.keywordsData analysis
dc.subject.keywordsDiscriminant analysis
dc.subject.keywordsDrug penetration
dc.subject.keywordsDrug research
dc.subject.keywordsDrug targeting
dc.subject.keywordsDrug transport
dc.subject.keywordsGenetic algorithm
dc.subject.keywordsHigh throughput screening
dc.subject.keywordsHuman
dc.subject.keywordsLinear discriminant analysis
dc.subject.keywordsMachine learning
dc.subject.keywordsMolecular weight
dc.subject.keywordsMolecule
dc.subject.keywordsMultiple linear regression analysis
dc.subject.keywordsPartition coefficient
dc.subject.keywordsPrediction
dc.subject.keywordsPriority journal
dc.subject.keywordsQuantitative structure activity relation
dc.subject.keywordsQuantitative structure pharmacokinetic relation
dc.subject.keywordsStatistical analysis
dc.subject.keywordsStatistical model
dc.subject.keywordsStatistical parameters
dc.subject.keywordsAnimal
dc.subject.keywordsBiological model
dc.subject.keywordsBlood-Brain Barrier
dc.subject.keywordsComputer simulation
dc.subject.keywordsPhysiology
dc.subject.keywordsAnimals
dc.subject.keywordsBlood-Brain Barrier
dc.subject.keywordsComputer simulation
dc.subject.keywordsHumans
dc.subject.keywordsModels, Cardiovascular
dc.subject.keywordsModels, Neurological
dc.rights.accessrightsinfo:eu-repo/semantics/restrictedAccess
dc.rights.ccAtribución-NoComercial 4.0 Internacional
dc.identifier.instnameUniversidad Tecnológica de Bolívar
dc.identifier.reponameRepositorio UTB
dc.description.notesoctanol, 111-87-5, 29063-28-3; water, 7732-18-5
dc.type.spaArtículo
dc.identifier.orcid55604777000
dc.identifier.orcid55665599200
dc.identifier.orcid55363486500
dc.identifier.orcid56674636400
dc.identifier.orcid57204812867
dc.identifier.orcid36454896800
dc.identifier.orcid26643601100


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Universidad Tecnológica de Bolívar - 2017 Institución de Educación Superior sujeta a inspección y vigilancia por el Ministerio de Educación Nacional. Resolución No 961 del 26 de octubre de 1970 a través de la cual la Gobernación de Bolívar otorga la Personería Jurídica a la Universidad Tecnológica de Bolívar.