Please use this identifier to cite or link to this item: https://doi.org/10.1039/c4tb00522h
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dc.titleEnhancing mesenchymal stem cell response using uniaxially stretched poly(ε-caprolactone) film micropatterns for vascular tissue engineering application
dc.contributor.authorWang, Z.-Y
dc.contributor.authorTeoh, S.H
dc.contributor.authorJohana, N.B
dc.contributor.authorKhoon Chong, M.S
dc.contributor.authorTeo, E.Y
dc.contributor.authorHong, M.-H
dc.contributor.authorYen Chan, J.K
dc.contributor.authorSan Thian, E
dc.date.accessioned2020-10-26T08:34:05Z
dc.date.available2020-10-26T08:34:05Z
dc.date.issued2014
dc.identifier.citationWang, Z.-Y, Teoh, S.H, Johana, N.B, Khoon Chong, M.S, Teo, E.Y, Hong, M.-H, Yen Chan, J.K, San Thian, E (2014). Enhancing mesenchymal stem cell response using uniaxially stretched poly(ε-caprolactone) film micropatterns for vascular tissue engineering application. Journal of Materials Chemistry B 2 (35) : 5898-5909. ScholarBank@NUS Repository. https://doi.org/10.1039/c4tb00522h
dc.identifier.issn20507518
dc.identifier.urihttps://scholarbank.nus.edu.sg/handle/10635/180378
dc.description.abstractRegeneration of tunica media with anisotropic architecture still remains a challenging issue for vascular tissue engineering (TE). Herein, we present the development of flexible poly(ε-caprolactone) (PCL) film micropatterns to regulate mesenchymal stem cells (MSCs) function for tunica media construction. Results showed that uniaxial thermal stretching of PCL films resulted in topographical micropatterns comprising of ridges/grooves, and improved mechanical properties, including yield stress, Young's modulus, and fracture stress without sacrificing film elasticity. Culturing on such PCL film micropatterns, MSCs self-aligned along the ridges with a more elongated morphology as compared to that of the un-stretched film group. Moreover, MSCs obtained a contractile SMCs-like phenotype, with ordered organization of cellular stress filaments and upregulated expression of the contractile makers, including SM-α-actin, calponin, and SM-MHC. The PCL film micropatterns could be rolled into a small-diameter 3D tubular scaffold with circumferential anisotropy of ridges/grooves, and in the incorporation of MSCs, which facilitated a hybrid sandwich-like vascular wall construction with ordered cell architecture similar to that of the tunica media. These results provide insights of how geometric cues are able to regulate stem cells with desired functions and have significant implications for the designing of a functionalized vascular TE scaffold with appropriate topographical geometries for guiding tunica media regeneration with microscale control of cell alignment and genetic expression. This journal is © the Partner Organisations 2014.
dc.rightsAttribution 4.0 International
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/
dc.sourceUnpaywall 20201031
dc.subjectAnisotropy
dc.subjectBiomechanics
dc.subjectElastic moduli
dc.subjectFlowcharting
dc.subjectProteins
dc.subjectScaffolds (biology)
dc.subjectStem cells
dc.subjectYield stress
dc.subjectCell architectures
dc.subjectCellular stress
dc.subjectCircumferential anisotropy
dc.subjectGenetic expressions
dc.subjectMesenchymal stem cell
dc.subjectTubular scaffold
dc.subjectUpregulated expression
dc.subjectVascular tissue engineering
dc.subjectCell culture
dc.typeArticle
dc.contributor.departmentELECTRICAL AND COMPUTER ENGINEERING
dc.contributor.departmentMECHANICAL ENGINEERING
dc.contributor.departmentDUKE-NUS MEDICAL SCHOOL
dc.description.doi10.1039/c4tb00522h
dc.description.sourcetitleJournal of Materials Chemistry B
dc.description.volume2
dc.description.issue35
dc.description.page5898-5909
dc.published.statePublished
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