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Hydrogel-integrated PVC tubing platform for simulating physiological perfusion of uterine tissue in vitro

dc.contributor.authorTurkmenoglu, Mustafa
dc.contributor.authorKaraduman, Emre
dc.contributor.authorYagcioglu, Selin
dc.contributor.authorBirler, Sema
dc.contributor.authorUlag, Songul
dc.contributor.authorYilmaz, Hilal
dc.contributor.authorSenel, Ilkay
dc.contributor.authorGunduz, Oguzhan
dc.contributor.authorUstundag, Cem Bulent
dc.contributor.authorSolakoglu, Seyhun
dc.contributor.authorPiskin, Mehmet Burcin
dc.date.accessioned2026-06-27T15:37:50Z
dc.date.issued2026
dc.description.abstractThis study presents the development of a hydrogel-supported perfusion platform designed for ex vivo uterine tissue graft cultivation under physiologically relevant conditions. Polyvinyl alcohol/Borax hydrogels were synthesized and systematically characterized by Fourier-transform infrared spectroscopy, rheological measurements, and swelling analyses, confirming the formation of borate-diol crosslinked hydrogel networks arising from reversible interactions characteristic of PVA/Borax systems, together with viscoelastic stability and high water retention capacity. Biocompatibility assays demonstrated that hydrogels maintained at physiological pH preserved cell viability above the ISO 10993-5 threshold, supporting their suitability as a matrix for tissue culture. A permeable nitrocellulose membrane, obtained by chemical modification of onion-derived cellulose, was incorporated into polyvinyl chloride tubing to enable controlled fluid exchange and nutrient transport. Integration of this membrane-modified tubing with the hydrogel scaffold created a perfusion system capable of sustaining uterine grafts in vitro by maintaining pH balance, supporting metabolite clearance, and enabling effective gas diffusion. The system maintained stable perfusion conditions and supported structural preservation of uterine tissue over a 5 d culture period. Preliminary trials with ovine uterine tissues confirmed the feasibility of the platform as a functional ex vivo culture environment. These findings demonstrate that the proposed system provides a physiologically relevant and scalable platform for ex vivo uterine tissue maintenance, with potential applications in reproductive biology, disease modeling, and regenerative medicine.en
dc.description.urihttps://doi.org/10.1088/2053-1591/ae60ca
dc.identifier.doi10.1088/2053-1591/ae60ca
dc.identifier.eissn2053-1591
dc.identifier.issue8
dc.identifier.urihttps://hdl.handle.net/20.500.14981/72211
dc.identifier.volume13
dc.identifier.wos001751147400001
dc.language.isoeng
dc.publisherIOP Publishing Ltd
dc.relation.ispartofMATERIALS RESEARCH EXPRESS
dc.rightsopenAccess
dc.subjecthydrogel
dc.subjectpolyvinyl alcohol (PVA)
dc.subjectborax
dc.subjectperfusion
dc.subjectnitrocellulose
dc.subject3D tissue
dc.subjectuterine pH
dc.subjectON-A-CHIP
dc.subjectWOUND DRESSINGS
dc.subjectBORAX HYDROGELS
dc.subjectCELLULOSE
dc.subjectMEMBRANE
dc.subjectPH
dc.subjectMICROFLUIDICS
dc.subjectSUSPENSIONS
dc.subjectPROTEINS
dc.subjectMaterials Science
dc.titleHydrogel-integrated PVC tubing platform for simulating physiological perfusion of uterine tissue in vitro
dc.typeArticle
dspace.entity.typePublication
local.import.sourceWOS

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