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dc.contributor.authorToosi Saidy, Navid
dc.contributor.authorFernández Colino, Alicia
dc.contributor.authorShiroud Heidari, Behzad
dc.contributor.authorKent, Ross
dc.contributor.authorVernon, Michael
dc.contributor.authorBas, Onur
dc.contributor.authorMulderrig, Shane
dc.contributor.authorLubig, Andreas
dc.contributor.authorRodríguez Cabello, José Carlos 
dc.contributor.authorDoyle, Barry
dc.contributor.authorHutmacher, Dietmar W.
dc.contributor.authorJuan Pardo, Elena M. de
dc.contributor.authorMela, Petra
dc.date.accessioned2022-07-19T11:35:39Z
dc.date.available2022-07-19T11:35:39Z
dc.date.issued2022
dc.identifier.citationAdvanced Functional Materials, 2022, vol. 32, n. 21es
dc.identifier.issn1616-301Xes
dc.identifier.urihttps://uvadoc.uva.es/handle/10324/54088
dc.descriptionProducción Científicaes
dc.description.abstractHeart valve tissue engineering (HVTE) aims to provide living autologous heart valve implants endowed with regenerative capabilities and life-long durability. However, fabrication of biomimetic scaffolds capable of providing the required functionality in terms of mechanical performance and tunable porosity to enable cellular infiltration remains a major challenge. Here, the additive manufacturing of bioinspired, spatially heterogeneous, tubular scaffolds enclosing the leaflets, inter-leaflet triangles, and their interface for in situ HVTE using melt electrowriting (MEW) is demonstrated. The innovative platform enables the digital fabrication of scaffolds with ad hoc architecture (e.g., tunable location, specific fiber pattern, and orientation) and customizable geometry via a custom-made control software. The user-friendly interface allows for the definition of areas of the scaffold with specific patterns to obtain properties such as tunable J-shaped stress–stain curve and anisotropy typical of the heart valve leaflet, compliant inter-leaflet triangles, and reinforced curvilinear boundary between them. Heterogeneous, tubular, heart valve MEW scaffolds are then embedded with a microporous elastin-like recombinamer (ELR) hydrogel to develop a soft-network composite favoring cell infiltration and ensuring hemocompatibility. The acute systolic hemodynamic functionality of the MEW/ELR composite satisfies the ISO 5840 requirements, under aortic and pulmonary conditions.es
dc.format.mimetypeapplication/pdfes
dc.language.isoenges
dc.publisherWileyes
dc.rights.accessRightsinfo:eu-repo/semantics/openAccesses
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/4.0/*
dc.subject.classificationTubular scaffoldses
dc.subject.classificationTissue engineeringes
dc.subject.classificationElectrowritinges
dc.titleSpatially heterogeneous tubular scaffolds for In situ heart valve tissue engineering using melt electrowritinges
dc.typeinfo:eu-repo/semantics/articlees
dc.rights.holder© 2022 The Authorses
dc.identifier.doi10.1002/adfm.202110716es
dc.relation.publisherversionhttps://onlinelibrary.wiley.com/doi/epdf/10.1002/adfm.202110716es
dc.identifier.publicationfirstpage2110716es
dc.identifier.publicationissue21es
dc.identifier.publicationtitleAdvanced Functional Materialses
dc.identifier.publicationvolume32es
dc.peerreviewedSIes
dc.description.projectAustralian Research Council (ARC ITTC in Additive Biomanufacturing, IC160100026)es
dc.description.projectGerman Research Foundation (DFG – Project number: 403170227 ArchiTissue)es
dc.description.projectThe START-Program of the Medical Faculty of RWTH Aachen University (60/17)es
dc.description.projectGobierno de España (PID2019-110709RB-100, RED2018-102417-T)es
dc.description.projectJunta de Castilla y León (VA317P18, Infrared2018-UVA06)es
dc.description.projectInterreg V España-Portugal POCTEP (0624_2IQBIONEURO_6_E)es
dc.identifier.essn1616-3028es
dc.rightsAttribution-NonCommercial-NoDerivatives 4.0 Internacional*
dc.type.hasVersioninfo:eu-repo/semantics/publishedVersiones
dc.subject.unesco22 Físicaes
dc.subject.unesco24 Ciencias de la Vidaes
dc.subject.unesco32 Ciencias Médicases


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