Nanoscale · 2019 · 124 citations · 33 references
Tissue EngineeringCardiac MuscleEngineeringBiomimetic MaterialsBiomaterials DesignBiofabricationCardiac RegenerationBiomedical EngineeringRegenerative MedicineRegenerative BiomaterialsPrinted ElectronicsMaterials ScienceMelt-based Ehd PrintingBioprintingFunctional Tissue EngineeringMultiscale Conductive Scaffolds3D Bioprinting3D PrintingSolution-based Ehd PrintingNative MyocardiumElectrohydrodynamic 3DMedicineBiomaterialsCardiac Tissue EngineeringExtracellular Matrix
Mimicking the hierarchical microarchitecture of native myocardium in vitro plays an important role in cardiac tissue engineering. Here we present a novel strategy to produce multiscale conductive scaffolds with layer-specific fiber orientations for cardiac regeneration by combining solution-based and melt-based electrohydrodynamic (EHD) printing techniques. Polycaprolactone (PCL) microfibers were printed by melt-based EHD printing and the fiber orientation was flexibly controlled in a layer-by-layer manner according to user-specific design. The as-printed microfibrous scaffolds can provide the seeded cells necessary contact cues to guide layer-specific cellular alignments. Sub-microscale conductive fibers were simultaneously incorporated inside the well-organized PCL scaffolds by solution-based EHD printing, which significantly improved the conductivity as well as the cellular adhesion and proliferation capacity. The multiscale conductive scaffolds can further direct the multiple-layer alignments of primary cardiomyocytes and facilitate cardiomyocyte-specific gene expressions, which exhibited enhanced synchronous beating behavior compared with pure microfibrous scaffolds. It is envisioned that the proposed hybrid EHD printing technique might provide a promising strategy to fabricate multifunctional micro/nanofibrous scaffolds with biomimetic architectures, electrical conductivity and even biosensing properties for the regeneration of electroactive tissues.
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Carbon-Nanotube-Embedded Hydrogel Sheets for Engineering Cardiac Constructs and Bioactuators
Su Ryon Shin, Sung Mi Jung, Momen Zalabany et al. · ACS Nano · 2013 · 929 citations · Full text
Reinforcement of hydrogels using three-dimensionally printed microfibres
Jetze Visser, Ferry P.W. Melchels, June Jeon et al. · Nature Communications · 2015 · 701 citations · Full text