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Poly(L-lactide)/nano-hydroxyapatite piezoelectric scaffolds for tissue engineering

creativework.datePublished2024-11-11
dc.contributor.authorZaszczyńska, Angelika
dc.contributor.authorGradys, Arkadiusz
dc.contributor.authorKołbuk, Dorota
dc.contributor.authorZabielski, Konrad
dc.contributor.authorSzewczyk, Piotr K.
dc.contributor.authorStachewicz, Urszula
dc.contributor.authorSajkiewicz, Paweł
dc.contributor.departmentWydział Inżynierii Metali i Informatyki Przemysłowej
dc.date.available2025-06-12T08:54:56Z
dc.date.issued2025
dc.description.abstractThe development of bone tissue engineering, a field with significant potential, requires a biomaterial with high bioactivity. The aim of this manuscript was to fabricate a nanofibrous poly(L-lactide) (PLLA) scaffold containing nano-hydroxyapatite (nHA) to investigate PLLA/nHA composites, particularly the effect of fiber arrangement and the addition of nHA on the piezoelectric phases and piezoelectricity of PLLA samples. In this study, we evaluated the effect of nHA particles on a PLLA-based electrospun scaffold with random and aligned fiber orientations. The addition of nHA increased the surface free energy of PLLA/nHA (42.9 mN/m) compared to PLLA (33.1 mN/m) in the case of aligned fibers. WAXS results indicated that at room temperature, all the fibers are in an amorphous state indicated by a lack of diffraction peaks and amorphous halo. DSC analysis showed that all samples located in the amorphous/disordered alpha' phase crystallize intensively at temperatures just above the Tg and recrystallize on further heating, achieving significantly higher crystallinity for pure PLLA than for doped nHA, 70 % vs 40 %, respectively. Additionally, PLLA/nHA fibers show a lower heat capacity for PLLA in the amorphous state, indicating that nHA reduces the molecular mobility of PLLA. Moreover, piezoelectric constant d33 was found to increase with the addition of nHA and for the aligned orientation of the fibers. In vitro tests confirmed that the addition of nHA and the aligned orientation of nanofibers increased osteoblast proliferation.en
dc.description.versionpostprint
dc.identifier.doihttps://doi.org/10.1016/j.micron.2024.103743
dc.identifier.issn0968-4328
dc.identifier.urihttps://repo.agh.edu.pl/handle/AGH/113142
dc.language.isoeng
dc.relation.ispartofMicron
dc.rightsAttribution-NoDerivatives 4.0 International
dc.rights.accessotwarty dostęp
dc.rights.urihttps://creativecommons.org/licenses/by-nd/4.0/legalcode
dc.subjectscaffoldsen
dc.subjecttissue engineeringen
dc.subjectbone tissue engineeringen
dc.subjectsmart medicineen
dc.subjectbiodegradable polymersen
dc.subjectregenerative medicineen
dc.titlePoly(L-lactide)/nano-hydroxyapatite piezoelectric scaffolds for tissue engineering
dc.typeartykuł
dspace.entity.typePublication
organization.identifier.ror03ha2q922
project.funder.nameNarodowe Centrum Nauki (NCN)
project.identifierNo 2021/03/Y/ST5/00231
project.nameInvestigation of Regenerative Effects of CRISPR / Cas9 Functionalized Piezoelectric Nerve Conduits on in vitro and in vivo Spinal Cord Injury Models – PIECRISCI
project.program.nameM Era Net
publicationissue.pagination103743
publicationvolume.volumeNumber188
relation.isAuthorOfPublicationea1d9f4c-96ce-4064-b151-516569852629
relation.isAuthorOfPublicationaf5f766e-eddd-479e-bbfd-0bba16595bd6
relation.isAuthorOfPublication.latestForDiscoveryea1d9f4c-96ce-4064-b151-516569852629
relation.isOrgUnitOfPublication852c64ef-7420-4762-9a79-64b0ca42b34f
relation.isOrgUnitOfPublication.latestForDiscovery852c64ef-7420-4762-9a79-64b0ca42b34f

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