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Varoni, Elena Maria; Cochis, Andrea; Altomare, Lina; GhalayaniEsfahani, Arash; Cigada, Alberto; De Nardo, Luigi; Rimondini, Lia, E-mail: elena.varoni@unimi.it2016
AbstractAbstract
[en] Neo-vascularization is a key factor in tissue regeneration within porous scaffolds. Here, we tested the hypothesis that micro-patterned scaffolds, with precisely-designed, open micro-channels, might help endothelial cells to produce intra-scaffold vascular networks. Three series of micro-patterned scaffolds were produced via electrochemical replica-deposition of chitosan and cross-linking. All had regularly-oriented micro-channels ( ϕ 500 μ m), which differed for the inter-channel spacing, at 600, 700, or 900 μ m, respectively. Random-pore scaffolds, using the same technique, were taken as controls. Physical-mechanical characterization revealed high water uptake and favorable elastic mechanical behavior for all scaffolds, slightly reduced in the presence of cross-linking and enhanced with the 700 μ m-spaced micro-pattern. At MTT assay, mouse endothelial cell viability was >90% at day 1, 3 and 7, confirmed by visual examination with scanning electron microscopy (SEM). Intra-scaffold cell density, at fluorescence analysis, was higher for the 600 μ m-spaced and the 700 μ m-spaced micro-patterns over the others. The 700 μ m-spaced scaffold was selected for the in vivo testing, to be compared to the random-pore one. Neither type produced an inflammatory reaction; both showed excellent tissue ingrowth. Micro-patterned scaffolds enhanced neo-vascularization, demonstrated by immunofluorescent, semi-quantitative analyses. These findings support the use of micro-patterned porous scaffolds, with adequately spaced micro-channels, to promote neo-vascularization. (paper)
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Available from http://dx.doi.org/10.1088/1748-6041/11/2/025018; Country of input: International Atomic Energy Agency (IAEA)
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Journal Article
Journal
Biomedical Materials (Bristol. Online); ISSN 1748-605X;
; v. 11(2); [13 p.]

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