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Functional Bioink and 3D Bioprinting Tissue Scaffold Applications for Spinal Cord Injury

dc.contributor.authorYucer, Seydanur
dc.contributor.authorSarac, Begum
dc.contributor.authorOzarslan, Ali Can
dc.contributor.authorSakarya, Deniz
dc.contributor.authorOzerol, Esma Ahlatcioglu
dc.contributor.authorCiftci, Fatih
dc.date.accessioned2026-06-27T15:25:11Z
dc.date.issued2026
dc.description.abstractSpinal cord injury (SCI), commonly resulting from sudden trauma such as traffic or sports accidents, leads to severe disruption of axonal connections and loss of sensory and motor function below the injury site. Despite numerous therapeutic efforts, effective strategies for neural repair remain limited. Tissue engineering has emerged as a promising approach for axonal regeneration, particularly through the design of three-dimensional (3D) polymeric scaffolds that can restore the structural and functional integrity of the injured spinal cord. This review focuses on recent advances in biomaterials and scaffold designs developed for SCI repair, emphasizing the role of nanocomposite systems that combine graphene oxide (GO), synthetic polymers such as PLGA-PEG, and bioactive ceramics like hydroxyapatite (HA). These hybrid materials offer improved biocompatibility, mechanical matching with spinal tissue, and enhanced cellular adhesion and guidance cues for axonal growth. The synergistic integration of these components enables the fabrication of multifunctional scaffolds capable of supporting stem cell differentiation and neurotrophic factor delivery. By critically summarizing the key parameters influencing scaffold performance, such as microarchitecture, surface modification, and mechanical compliance, this work outlines a framework for developing next-generation 3D nanocomposite scaffolds for SCI regeneration. The proposed approach highlights how GO/PLGA-PEG/HA systems can bridge the gap between experimental tissue engineering and clinically translatable neuroregenerative therapies.en
dc.description.sponsorshipFatih Sultan Mehmet Vakif University Biomedical Department Biomaterials (BioriginAI Research Group) Laboratory
dc.description.urihttps://doi.org/10.1007/s10439-025-03908-7
dc.identifier.doi10.1007/s10439-025-03908-7
dc.identifier.eissn1573-9686
dc.identifier.endpage380
dc.identifier.issn0090-6964
dc.identifier.issue2
dc.identifier.pubmed41239033
dc.identifier.startpage353
dc.identifier.urihttps://hdl.handle.net/20.500.14981/70752
dc.identifier.volume54
dc.identifier.wos001614399500001
dc.language.isoeng
dc.publisherSPRINGER
dc.relation.ispartofANNALS OF BIOMEDICAL ENGINEERING
dc.subjectSpinal cord injury
dc.subjectAxonal regeneration
dc.subjectScaffold
dc.subjectTissue engineering
dc.subjectGraphene oxide
dc.subjectSynthetic polymers
dc.subjectHydroxyapatite
dc.subjectPOLY-EPSILON-CAPROLACTONE
dc.subjectNERVE REGENERATION
dc.subjectGUIDANCE
dc.subjectCELLS
dc.subjectDELIVERY
dc.subjectACID
dc.subjectEngineering
dc.titleFunctional Bioink and 3D Bioprinting Tissue Scaffold Applications for Spinal Cord Injury
dc.typeReview
dspace.entity.typePublication
local.import.sourceWOS

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