Publication: Lattice Microarchitecture for Bone Tissue Engineering from Calcium Phosphate Compared to Titanium
Lattice Microarchitecture for Bone Tissue Engineering from Calcium Phosphate Compared to Titanium
Date
Date
Date
| cris.lastimport.scopus | 2025-05-24T03:36:27Z | |
| cris.lastimport.wos | 2025-08-18T01:34:36Z | |
| dc.contributor.institution | University of Zurich | |
| dc.date.accessioned | 2018-11-01T08:27:45Z | |
| dc.date.available | 2018-11-01T08:27:45Z | |
| dc.date.issued | 2018-10 | |
| dc.description.abstract | Additive manufacturing of bone tissue engineering scaffolds will become a key element for personalized bone tissue engineering in the near future. Several additive manufacturing processes are based on extrusion where the deposition of the filament will result in a three-dimensional lattice structure. Recently, we studied diverse lattice structures for bone tissue engineering realized by laser sintering of titanium. In this work, we used lithography-based ceramic manufacturing of lattice structures to produce scaffolds from tricalcium phosphates (TCP) and compared them in vivo to congruent titanium scaffolds manufactured with the identical computer-aided design data to look for material-based differences in bony healing. The results show that, during a 4-week period in a noncritical-size defect in a rabbit calvarium, both scaffolds with the identical microarchitecture performed equally well in terms of bony regeneration and bony bridging of the defect. A significant increase in both parameters could only be achieved when the TCP-based scaffolds were doped with bone morphogenetic protein-2. In a critical-size defect in the calvarial bone of rabbits, however, the titanium scaffold performed significantly better than the TCP-based scaffold, most likely due to its higher mechanical stability. We conclude that titanium and TCP-based scaffolds of the same microarchitecture perform equally well in terms of bone regeneration, provided the microarchitecture meets the mechanical demand at the site of implantation. | |
| dc.identifier.doi | 10.1089/ten.TEA.2018.0014 | |
| dc.identifier.issn | 1937-3341 | |
| dc.identifier.scopus | 2-s2.0-85054449121 | |
| dc.identifier.uri | https://www.zora.uzh.ch/handle/20.500.14742/147224 | |
| dc.identifier.wos | 000444042500001 | |
| dc.language.iso | eng | |
| dc.subject.ddc | 610 Medicine & health | |
| dc.title | Lattice Microarchitecture for Bone Tissue Engineering from Calcium Phosphate Compared to Titanium | |
| dc.type | article | |
| dcterms.accessRights | info:eu-repo/semantics/openAccess | |
| dcterms.bibliographicCitation.journaltitle | Tissue Engineering. Part A | |
| dcterms.bibliographicCitation.number | 19-20 | |
| dcterms.bibliographicCitation.originalpublishername | Mary Ann Liebert | |
| dcterms.bibliographicCitation.pageend | 1561 | |
| dcterms.bibliographicCitation.pagestart | 1554 | |
| dcterms.bibliographicCitation.pmid | 29999466 | |
| dcterms.bibliographicCitation.volume | 24 | |
| dspace.entity.type | Publication | en |
| uzh.contributor.affiliation | University of Zurich | |
| uzh.contributor.affiliation | University of Zurich | |
| uzh.contributor.affiliation | University of Zurich | |
| uzh.contributor.affiliation | Hochschule für Life Sciences FHNW | |
| uzh.contributor.affiliation | Hochschule für Life Sciences FHNW | |
| uzh.contributor.affiliation | Hochschule für Life Sciences FHNW | |
| uzh.contributor.affiliation | University of Zurich | |
| uzh.contributor.author | Chen, Tse-Hsiang | |
| uzh.contributor.author | Ghayor, Chafik | |
| uzh.contributor.author | Siegenthaler, Barbara | |
| uzh.contributor.author | Schuler, Felix | |
| uzh.contributor.author | Rüegg, Jasmine | |
| uzh.contributor.author | De Wild, Michael | |
| uzh.contributor.author | Weber, Franz E | |
| uzh.contributor.correspondence | No | |
| uzh.contributor.correspondence | No | |
| uzh.contributor.correspondence | No | |
| uzh.contributor.correspondence | No | |
| uzh.contributor.correspondence | No | |
| uzh.contributor.correspondence | No | |
| uzh.contributor.correspondence | Yes | |
| uzh.document.availability | published_version | |
| uzh.eprint.datestamp | 2018-11-01 08:27:45 | |
| uzh.eprint.lastmod | 2025-08-18 01:42:50 | |
| uzh.eprint.statusChange | 2018-11-01 08:27:45 | |
| uzh.harvester.eth | Yes | |
| uzh.harvester.nb | No | |
| uzh.identifier.doi | 10.5167/uzh-157519 | |
| uzh.jdb.eprintsId | 26791 | |
| uzh.oastatus.unpaywall | hybrid | |
| uzh.oastatus.zora | Hybrid | |
| uzh.publication.citation | Chen, Tse-Hsiang; Ghayor, Chafik; Siegenthaler, Barbara; Schuler, Felix; Rüegg, Jasmine; De Wild, Michael; Weber, Franz E (2018). Lattice Microarchitecture for Bone Tissue Engineering from Calcium Phosphate Compared to Titanium. Tissue Engineering. Part A, 24(19-20):1554-1561. | |
| uzh.publication.freeAccessAt | pubmedid | |
| uzh.publication.originalwork | original | |
| uzh.publication.publishedStatus | final | |
| uzh.scopus.impact | 22 | |
| uzh.scopus.subjects | Bioengineering | |
| uzh.scopus.subjects | Biochemistry | |
| uzh.scopus.subjects | Biomaterials | |
| uzh.scopus.subjects | Biomedical Engineering | |
| uzh.workflow.eprintid | 157519 | |
| uzh.workflow.fulltextStatus | public | |
| uzh.workflow.revisions | 53 | |
| uzh.workflow.rightsCheck | keininfo | |
| uzh.workflow.source | PubMed:PMID:29999466 | |
| uzh.workflow.status | archive | |
| uzh.wos.impact | 22 | |
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