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Optimization of tilmicosin-loaded nanostructured lipid carriers using orthogonal design for overcoming oral administration obstacle

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dc.rights.license CC BY eng
dc.contributor.author Wen, J. cze
dc.contributor.author Gao, X. cze
dc.contributor.author Zhang, Q. cze
dc.contributor.author Sahito, B. cze
dc.contributor.author Si, H. cze
dc.contributor.author Li, G. cze
dc.contributor.author Ding, Q. cze
dc.contributor.author Wu, Wenda cze
dc.contributor.author Nepovimová, Eugenie cze
dc.contributor.author Jiang, S. cze
dc.contributor.author Wang, L. cze
dc.contributor.author Kuča, Kamil cze
dc.contributor.author Guo, D. cze
dc.date.accessioned 2026-07-21T06:17:25Z
dc.date.available 2026-07-21T06:17:25Z
dc.date.issued 2021 eng
dc.identifier.issn 1999-4923 eng
dc.identifier.uri http://hdl.handle.net/20.500.12603/2732
dc.description.abstract Tilmicosin (TMS) is widely used to treat bacterial infections in veterinary medicine, but the clinical effect is limited by its poor solubility, bitterness, gastric instability, and intestinal efflux transport. Nanostructured lipid carriers (NLCs) are nowadays considered to be a promising vector of therapeutic drugs for oral administration. In this study, an orthogonal experimental design was applied for optimizing TMS-loaded NLCs (TMS-NLCs). The ratios of emulsifier to mixed lipids, stearic acid to oleic acid, drugs to mixed lipids, and cold water to hot emulsion were selected as the independent variables, while the hydrodynamic diameter (HD), drug loading (DL), and entrapment efficiency (EE) were the chosen responses. The optimized TMS-NLCs had a small HD, high DL, and EE of 276.85 ± 2.62 nm, 9.14 ± 0.04%, and 92.92 ± 0.42%, respectively. In addition, a low polydispersity index (0.231 ± 0.001) and high negative zeta potential (−31.10 ± 0.00 mV) indicated the excellent stability, which was further demonstrated by uniformly dispersed spherical nanoparticles under transmission electron microscopy. TMS-NLCs exhibited a slow and sustained release behavior in both simulated gastric juice and intestinal fluid. Furthermore, MDCK-chAbcg2/Abcb1 cell mono-layers were successfully established to evaluate their absorption efficiency and potential mechanism. The results of biodirectional transport showed that TMS-NLCs could enhance the cellular uptake and inhibit the efflux function of drug transporters against TMS in MDCK-chAbcg2/Abcb1 cells. Moreover, the data revealed that TMS-NLCs could enter the cells mainly via the caveolae/lipid raft-mediated endocytosis and partially via macropinocytosis. Furthermore, TMS-NLCs showed the same antibacterial activity as free TMS. Taken together, the optimized NLCs were the promising oral delivery carrier for overcoming oral administration obstacle of TMS. © 2021 by the authors. Licensee MDPI, Basel, Switzerland. eng
dc.format p. "Article number 303" eng
dc.language.iso eng eng
dc.publisher MDPI AG eng
dc.relation.ispartof Pharmaceutics, volume 13, issue: 3 eng
dc.subject Intestinal absorption eng
dc.subject MDCK-chAbcg2/Abcb1 cell monolayer eng
dc.subject Nanostructured lipid carriers eng
dc.subject Orthogonal design eng
dc.subject Tilmicosin eng
dc.title Optimization of tilmicosin-loaded nanostructured lipid carriers using orthogonal design for overcoming oral administration obstacle eng
dc.type article eng
dc.identifier.obd 43877553 eng
dc.identifier.doi 10.3390/pharmaceutics13030303 eng
dc.publicationstatus postprint eng
dc.peerreviewed yes eng
dc.source.url https://www.mdpi.com/1999-4923/13/3/303 cze
dc.relation.publisherversion https://www.mdpi.com/1999-4923/13/3/303 eng
dc.rights.access Open Access eng


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