Publication:

3D microtissue–derived human stem cells seeded on electrospun nanocomposites under shear stress: Modulation of gene expression

Date

Date

Date
2020
Journal Article
Published version
cris.lastimport.scopus2025-05-30T03:57:32Z
cris.lastimport.wos2025-07-21T01:31:08Z
dc.contributor.institutionUniversity of Zurich
dc.date.accessioned2019-11-01T13:59:32Z
dc.date.available2019-11-01T13:59:32Z
dc.date.issued2020
dc.description.abstract

Objective Different microenvironments trigger distinct differentiation of stem cells. Even without chemical supplementation, mechanical stimulation by shear stress may help to induce the desired differentiation. The cell format, such as three-dimensional (3D) microtissues (MTs), MT-derived cells or single cells (SCs), may have a pivotal impact as well. Here, we studied modulation of gene expression in human adipose–derived stem cells (ASCs) exposed to shear stress and/or after MT formation. Materials and methods Electrospun meshes of poly-lactic-co-glycolic acid and amorphous calcium phosphate nanoparticles (PLGA/aCaP) at a weight ratio of 60:40 were seeded with human ASCs as MTs or as SCs and cultured in Dulbecco's modified Eagle's medium without chemical supplementation. After 2 weeks of static culture, the scaffolds were cultured statically for another 2 weeks or placed in a Bose® bioreactor with a flow rate per area of 0.16 mL cm−2 min−1. Stiffness of the scaffolds was assessed as a function of time. After 4 weeks, minimum stem cell criteria markers and selected markers of osteogenesis, endothelial cell differentiation, adipogenesis and chondrogenesis were analysed by quantitative real-time polymerase chain reaction. Additionally, cell distribution within the scaffolds and the allocation of the yes-associated protein (YAP) in the cells were assessed by immunohistochemistry. Results MTs decayed completely within 2 weeks after seeding on PLGA/aCaP. The osteogenic marker gene alkaline phosphatase and the endothelial cell marker gene CD31 were upregulated in MT-derived ASCs compared with SCs. Shear stress realised by fluid flow perfusion upregulated peroxisome proliferator–activated receptor gamma 2 expression in MT-derived ASCs and in SCs. The nuclear-to-cytoplasmic ratio of YAP expression was doubled under perfusion compared with that under static culture for MT-derived ASCs and SCs. Conclusions Osteogenic and angiogenic commitments were more pronounced in MT-derived ASCs seeded on bone biomimetic electrospun nanocomposite PLGA/aCaP than in SCs seeded without induction medium. Furthermore, the static culture was superior to the perfusion regimen used here, as shear stress resulted in adipogenic commitment for MT-derived ASCs and SCs, although the YAP nuclear-to-cytoplasmic ratio indicated higher cell tensions under perfusion, usually associated with preferred osteogenic differentiation.

dc.identifier.doi10.1016/j.jmbbm.2019.103481
dc.identifier.issn1751-6161
dc.identifier.scopus2-s2.0-85074212659
dc.identifier.urihttps://www.zora.uzh.ch/handle/20.500.14742/161339
dc.identifier.wos000512220000016
dc.language.isoeng
dc.subjectMechanics of Materials
dc.subjectBiomaterials
dc.subjectBiomedical Engineering
dc.subject.ddc610 Medicine & health
dc.title

3D microtissue–derived human stem cells seeded on electrospun nanocomposites under shear stress: Modulation of gene expression

dc.typearticle
dcterms.accessRightsinfo:eu-repo/semantics/closedAccess
dcterms.bibliographicCitation.journaltitleJournal of the Mechanical Behavior of Biomedical Materials
dcterms.bibliographicCitation.originalpublishernameElsevier
dcterms.bibliographicCitation.pagestart103481
dcterms.bibliographicCitation.pmid31678737
dcterms.bibliographicCitation.volume102
dspace.entity.typePublicationen
uzh.contributor.affiliationUniversitatsSpital Zurich
uzh.contributor.affiliationUniversitatsSpital Zurich
uzh.contributor.affiliationETH Zürich
uzh.contributor.affiliationETH Zürich
uzh.contributor.affiliationUniversitatsSpital Zurich
uzh.contributor.affiliationUniversitatsSpital Zurich
uzh.contributor.affiliationUniversitatsSpital Zurich
uzh.contributor.affiliationUniversitatsSpital Zurich
uzh.contributor.affiliationUniversitatsSpital Zurich
uzh.contributor.authorSchneider, Isabelle
uzh.contributor.authorBaumgartner, Walter
uzh.contributor.authorGröninger, Olivier
uzh.contributor.authorStark, Wendelin J
uzh.contributor.authorMärsmann, Sonja
uzh.contributor.authorCalcagni, Maurizio
uzh.contributor.authorCinelli, Paolo
uzh.contributor.authorWolint, Petra
uzh.contributor.authorBuschmann, Johanna
uzh.contributor.correspondenceNo
uzh.contributor.correspondenceNo
uzh.contributor.correspondenceNo
uzh.contributor.correspondenceNo
uzh.contributor.correspondenceNo
uzh.contributor.correspondenceNo
uzh.contributor.correspondenceNo
uzh.contributor.correspondenceNo
uzh.contributor.correspondenceYes
uzh.date.akaber2019
uzh.document.availabilityno_document
uzh.eprint.datestamp2019-11-01 13:59:32
uzh.eprint.lastmod2025-07-21 02:07:09
uzh.eprint.statusChange2019-11-01 13:59:32
uzh.harvester.ethNo
uzh.harvester.nbNo
uzh.jdb.eprintsId12912
uzh.oastatus.unpaywallclosed
uzh.oastatus.zoraClosed
uzh.publication.citationSchneider, Isabelle; Baumgartner, Walter; Gröninger, Olivier; Stark, Wendelin J; Märsmann, Sonja; Calcagni, Maurizio; Cinelli, Paolo; Wolint, Petra; Buschmann, Johanna (2020). 3D microtissue–derived human stem cells seeded on electrospun nanocomposites under shear stress: Modulation of gene expression. Journal of the Mechanical Behavior of Biomedical Materials, 102:103481.
uzh.publication.originalworkoriginal
uzh.publication.publishedStatusfinal
uzh.scopus.impact12
uzh.scopus.subjectsBiomaterials
uzh.scopus.subjectsBiomedical Engineering
uzh.scopus.subjectsMechanics of Materials
uzh.workflow.doajuzh.workflow.doaj.false
uzh.workflow.eprintid176258
uzh.workflow.fulltextStatusnone
uzh.workflow.revisions51
uzh.workflow.rightsCheckkeininfo
uzh.workflow.sourceCrossRef:10.1016/j.jmbbm.2019.103481
uzh.workflow.statusarchive
uzh.wos.impact14
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