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Electrospun Coaxial Fibers to Optimize the Release of Poorly Water-Soluble Drug

Yubo Liu, Xiaohong Chen, Yuyang Liu, Yuhang Gao, Ping Liu

2022Polymers60 citationsDOIOpen Access PDF

Abstract

In a drug delivery system, the physicochemical properties of the polymeric matrix have a positive impact on the bioavailability of poorly water-soluble drugs. In this work, monolithic F1 fibers and coaxial F2 fibers were successfully prepared using polyvinylpyrrolidone as the main polymer matrix for drug loading and the poorly water-soluble curcumin (Cur) as a model drug. The hydrophobic poly (3-hydroxybutyric acid-co-3-hydroxyvaleric acid) (PHBV) was designed as a blank layer to change the hydrophilicity of the fiber and restrain the drug dissolution rate. The curved linear morphology without beads of F1 fibers and the straight linear morphology with few spindles of F2 fibers were characterized using field-emission environmental scanning electron microscopy. The amorphous forms of the drug and its good compatibility with polymeric matrix were verified by X-ray diffraction and attenuated total reflectance Fourier transformed infrared spectroscopy. Surface wettability and drug dissolution data showed that the weaker hydrophilicity F2 fibers (31.42° ± 3.07°) had 24 h for Cur dissolution, which was much longer than the better hydrophilic F1 fibers (15.31° ± 2.79°) that dissolved the drug in 4 h.

Topics & Concepts

Materials scienceDissolutionChemical engineeringPolyvinylpyrrolidoneCrystallinityDrug deliveryPolymerWettingScanning electron microscopeDissolution testingComposite materialPolymer chemistryNanotechnologyEthyl celluloseEngineeringElectrospun Nanofibers in Biomedical ApplicationsAdvanced Sensor and Energy Harvesting MaterialsNatural Fiber Reinforced Composites
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