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Bio-mechano-compatible electrospun scaffold as external support to prevent autograft dilatation in the ross procedure

dc.contributor.authorReis, M. S.
dc.contributor.authorRosadas, M.
dc.contributor.authorHo, C. I.
dc.contributor.authorPazmino, C. A.
dc.contributor.authorCosta, J. B.
dc.contributor.authorOliveira, A. L.
dc.contributor.authorRibeiro, V. P.
dc.date.accessioned2026-09-24T16:02:05Z
dc.date.available2026-09-24T16:02:05Z
dc.date.issued2026-09-07
dc.description.abstractIntroduction: The Ross procedure is a surgical intervention that replaces a diseased aortic valve with the patient’s own pulmonary valve. Despite its advantages, associated with the adaptative growth and biocompatibility, the dilatation of the autograft due to high systemic pressure remains a concern. This study aims at producing a scaffold to prevent autograft dilatation combining mechanical resilience and controlled biodegradability with bioactive cues to improve biocompatibility, avoiding the low-porosity and stiffness of the current solutions. Materials and Methods: Tubular scaffolds of 2.5 mm inner diameter were electrospun using PCL (Mn ≈ 81.6 kg/mol), bovine elastin, and porcine aortic decellularized extracellular matrix (dECM) (19:0.5:0.5 w/v% ratio) (Fig. 1A). The results were compared to PCL and PCL:Elastin without dECM. Characterization included scanning electron microscopy (SEM) morphology, tensile testing, swelling, and accelerated hydrolytic degradation (0.2M NaOH). Cytocompatibility was assessed via conditioned medium and direct human dermal fibroblast (hDF) seeding on the tube lumen. Metabolic activity and DNA were quantified, while cellular morphology and attachment were visualized using SEM and 4',6-diamidino-2-phenylindole (DAPI) staining. Results: The incorporation of elastin and dECM into the scaffold provided consistent fibers (1 − 2 𝜇𝑚) leading to a reduction in the stiffness, as compared to pure PCL. Under physiological pressures, The tri-blend scaffold withstood failure, exhibiting supraphysiological burst pressures. Physicochemical analysis showed minimal swelling after 24h (3 ± 3%) and controlled weight loss, demonstrating superior structural stability compared to the faster degradation of PCL and PCL:elastin. In vitro, live/dead staining showed no harmful byproducts released by the tri-blend scaffolds, with hDFs maintaining a healthy phenotype, confirmed by cytocompatibility levels over 95% after 72h. Direct contact studies demonstrated successful scaffold colonization, with the tri-blend supporting robust hDF adhesion, viability, and proliferation over 14 days. Conclusion: PCL:Elastin:dECM electrospun scaffolds balanced mechanical reinforcement with biological functionality, avoiding the excessive rigidity of pure synthetic polymers. The blend promoted robust hDF adhesion and proliferation on the tube lumen. Since fibroblasts dominate the aortic adventitial layer, the interface for external supports, this bioactive scaffold offers a promising strategy for reinforcing pulmonary autografts in the Ross procedure.eng
dc.identifier.other8252cd57-96c8-4a5a-99c3-228bfaf72d66
dc.identifier.urihttp://hdl.handle.net/10400.14/59581
dc.language.isoeng
dc.peerreviewedyes
dc.rights.uriN/A
dc.titleBio-mechano-compatible electrospun scaffold as external support to prevent autograft dilatation in the ross procedure
dc.typeconference object
dspace.entity.typePublication
oaire.citation.endPage2
oaire.citation.startPage1
oaire.citation.title35th Annual Conference of the European Society for Biomaterials
oaire.versionhttp://purl.org/coar/version/c_970fb48d4fbd8a85

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