Precision 3D‐printed cell scaffolds mimicking native tissue composition and mechanics

dc.contributor.authorErben, Amelie
dc.contributor.authorHörning, Marcel
dc.contributor.authorHartmann, Bastian
dc.contributor.authorBecke, Tanja
dc.contributor.authorEisler, Stephan A.
dc.contributor.authorSouthan, Alexander
dc.contributor.authorCranz, Séverine
dc.contributor.authorHayden, Oliver
dc.contributor.authorKneidinger, Nikolaus
dc.contributor.authorKönigshoff, Melanie
dc.contributor.authorLindner, Michael
dc.contributor.authorTovar, Günter E. M.
dc.contributor.authorBurgstaller, Gerald
dc.contributor.authorClausen‐Schaumann, Hauke
dc.contributor.authorSudhop, Stefanie
dc.contributor.authorHeymann, Michael
dc.date.accessioned2020-11-27T13:16:38Z
dc.date.available2020-11-27T13:16:38Z
dc.date.issued2020de
dc.description.abstractCellular dynamics are modeled by the 3D architecture and mechanics of the extracellular matrix (ECM) and vice versa. These bidirectional cell‐ECM interactions are the basis for all vital tissues, many of which have been investigated in 2D environments over the last decades. Experimental approaches to mimic in vivo cell niches in 3D with the highest biological conformity and resolution can enable new insights into these cell‐ECM interactions including proliferation, differentiation, migration, and invasion assays. Here, two‐photon stereolithography is adopted to print up to mm‐sized high‐precision 3D cell scaffolds at micrometer resolution with defined mechanical properties from protein‐based resins, such as bovine serum albumin or gelatin methacryloyl. By modifying the manufacturing process including two‐pass printing or post‐print crosslinking, high precision scaffolds with varying Young's moduli ranging from 7‐300 kPa are printed and quantified through atomic force microscopy. The impact of varying scaffold topographies on the dynamics of colonizing cells is observed using mouse myoblast cells and a 3D‐lung microtissue replica colonized with primary human lung fibroblast. This approach will allow for a systematic investigation of single‐cell and tissue dynamics in response to defined mechanical and bio‐molecular cues and is ultimately scalable to full organs.en
dc.identifier.issn2192-2659
dc.identifier.other1917013957
dc.identifier.urihttp://nbn-resolving.de/urn:nbn:de:bsz:93-opus-ds-111792de
dc.identifier.urihttp://elib.uni-stuttgart.de/handle/11682/11179
dc.identifier.urihttp://dx.doi.org/10.18419/opus-11162
dc.language.isoende
dc.relation.uridoi:10.1002/adhm.202000918de
dc.rightsinfo:eu-repo/semantics/openAccessde
dc.subject.ddc500de
dc.subject.ddc540de
dc.subject.ddc570de
dc.titlePrecision 3D‐printed cell scaffolds mimicking native tissue composition and mechanicsen
dc.typearticlede
ubs.fakultaetEnergie-, Verfahrens- und Biotechnikde
ubs.fakultaetFakultäts- und hochschulübergreifende Einrichtungende
ubs.fakultaetFakultätsübergreifend / Sonstige Einrichtungde
ubs.institutInstitut für Biomaterialien und biomolekulare Systemede
ubs.institutInstitut für Grenzflächenverfahrenstechnik und Plasmatechnologiede
ubs.institutStuttgart Research Center Systems Biology (SRCSB)de
ubs.institutFakultätsübergreifend / Sonstige Einrichtungde
ubs.publikation.seiten15de
ubs.publikation.sourceAdvanced healthcare materials (2020), No. 2000918de
ubs.publikation.typZeitschriftenartikelde

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