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dc.contributor.author Juhász, Ádám
dc.contributor.author Ungor, Ditta
dc.contributor.author Varga, Norbert
dc.contributor.author Katona, Gábor
dc.contributor.author Balogh, György T.
dc.contributor.author Csapó, Edit
dc.date.accessioned 2023-11-08T13:45:16Z
dc.date.available 2023-11-08T13:45:16Z
dc.date.issued 2023
dc.identifier.citation journalVolume=24;journalIssueNumber=18;journalPages=Paper 14251, 13 p.;journalTitle=INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES;pagerange=14251;journalAbbreviatedTitle=INT J MOL SCI;
dc.identifier.uri http://repo.lib.semmelweis.hu//handle/123456789/9573
dc.identifier.uri doi:https://doi.org/10.3390/ijms241814251
dc.description.abstract Encapsulation possibilities of an extensively investigated neuroprotective drug (kynurenic acid, KYNA) are studied via lipid-based nanocarriers to increase the blood–brain barrier (BBB) specific permeability. The outcomes of various preparation conditions such as stirring and sonication time, concentration of the lipid carriers and the drug, and the drug-to-lipid ratio are examined. Considering the experimentally determined encapsulation efficiency, hydrodynamic diameter, and ζ-potential values, the initial lipid and drug concentration as well as the stirring and sonication time of the preparation were optimized. The average hydrodynamic diameter of the prepared asolectin-(LIP) and water-soluble lipopolymer (WSLP)-based liposomes was found to be ca. 25 and 60 nm under physiological conditions. The physicochemical characterization of the colloidal carriers proves that the preparation of the drug-loaded liposomes was a successful process, and secondary interactions were indicated between the drug molecule and the polymer residues around the WSLP membrane. Dissolution profiles of the active molecule under physiological conditions were registered, and the release of the unformulated and encapsulated drug is very similar. In addition to this outcome, the in vitro polar brain lipid extract (porcine)-based permeability test proved the achievement of two- or fourfold higher BBB specific penetration and lipid membrane retention for KYNA in the liposomal carriers relative to the unformatted drug.
dc.format.extent 14251, 13 p;
dc.title Lipid-Based Nanocarriers for Delivery of Neuroprotective Kynurenic Acid: Preparation, Characterization, and BBB Transport
dc.type Journal Article
dc.date.updated 2023-09-20T10:20:35Z
dc.language.rfc3066 en
dc.rights.holder NULL
dc.identifier.mtmt 34146936
dc.identifier.wos WOS:001073609400001
dc.identifier.scopus 85172808982
dc.contributor.department SE/GYTK/Gyógyszerészi Kémiai Intézet
dc.contributor.institution Semmelweis Egyetem


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