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Fabrication of ethosuximide loaded alginate/polyethylene oxide scaffolds for epilepsy research using 3D-printing method

dc.contributor.authorKarabulut, Hatice
dc.contributor.authorDutta, Abir
dc.contributor.authorMoukbil, Yunis
dc.contributor.authorAkyol, Aysim Cisen
dc.contributor.authorUlag, Songul
dc.contributor.authorAydin, Banu
dc.contributor.authorGulhan, Rezzan
dc.contributor.authorUs, Zeynep
dc.contributor.authorKalaskar, Deepak M.
dc.contributor.authorGunduz, Oguzhan
dc.date.accessioned2026-06-27T15:07:49Z
dc.date.issued2023
dc.description.abstractEpilepsy is a medical condition that causes seizures and impairs the mental and physical activities of patients. Unfortunately, over one-third of patients do not receive adequate relief from oral Antiepileptic Drugs (AEDs) and continue to experience seizures. In addition to that, long term usage of Antiepileptic Drugs can cause a range of side effects. To overcome this problem, the precision of 3D printing technology is combined with the controlled release capabilities of biodegradable polymers, allowing for tailored and localized AED delivery to specific seizure sites. As a result of this novel technique, therapeutic outcomes can be enhanced, side effects of AEDs are minimized, and patient-specific dosage forms can be created. This study focused on the use of ethosuximide, an antiepileptic drug, at different concentrations (10, 13, and 15 mg) loaded into 3D-printed sodium alginate and polyethylene oxide scaffolds. The scaffolds contained varying concentrations (0.25%, 0.50%, and 0.75% w/v) and had varying pores created by 3D patterning sizes from 159.86 +/- 19.9 mu m to 240.29 +/- 10.7 mu m to optimize the releasing system for an intracranial administration. The addition of PEO changed the Tg and Tm temperatures from 65 degrees C to 69 degrees C and from 262 degrees C to 267 degrees C, respectively. Cytotoxicity assays using the human neuroblastoma cell line (SH-SY5Y) showed that cell metabolic activity reached 130% after 168 h, allowing the cells to develop into mature neural cells. In vitro testing demonstrated sustained ethosuximide release lasting 2 hours despite crosslinking with 3% CaCl2. The workpaves the way for the use of ethosuximide-loaded scaffolds for treating epilepsy.en
dc.description.sponsorshipTrkiye Bilimsel Ve Teknolojik Arascedil
dc.description.sponsorshiptimath
dc.description.sponsorshiprma Kurumu10.13039/501100004410
dc.description.urihttps://doi.org/10.3389/fbioe.2023.1244323
dc.identifier.doi10.3389/fbioe.2023.1244323
dc.identifier.issn2296-4185
dc.identifier.pubmed38107613
dc.identifier.urihttps://hdl.handle.net/20.500.14981/68300
dc.identifier.volume11
dc.identifier.wos001124526900001
dc.language.isoeng
dc.publisherFRONTIERS MEDIA SA
dc.relation.ispartofFRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY
dc.rightsopenAccess
dc.subject3D-printing
dc.subjectdrug resistant epilepsy
dc.subjectepilepsy treatment
dc.subjectpolyethylene oxide
dc.subjectimplantable scaffolds
dc.subjectsodium alginate
dc.subjectPOLY(ETHYLENE OXIDE)
dc.subjectIN-VITRO
dc.subjectFT-IR
dc.subjectPOLYMER
dc.subjectEPIDEMIOLOGY
dc.subjectRESISTANCE
dc.subjectMORPHOLOGY
dc.subjectDELIVERY
dc.subjectBiotechnology & Applied Microbiology
dc.subjectEngineering
dc.titleFabrication of ethosuximide loaded alginate/polyethylene oxide scaffolds for epilepsy research using 3D-printing method
dc.typeArticle
dspace.entity.typePublication
local.import.sourceWOS

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