Cell Adhesion & Migration · 2013 · 26 citations · 29 references
Tissue EngineeringEngineeringBiomaterials DesignFabrication TechniquesBiofabricationBiomedical EngineeringRegenerative MedicineMulti-layered ScaffoldBiomaterial ModelingCell BehaviorMicrofluidicsScaffoldsCell BiomechanicsUnique Multi-layered ScaffoldFunctional Tissue EngineeringCell EngineeringCell Biology3D Bioprinting3D PrintingMicrofabricationMulti-layer Three-dimensional ScaffoldMedicineBiomaterialsBiocompatible MaterialControlled Porous Micro-architectureExtracellular Matrix
Various methods can be employed to fabricate scaffolds with characteristics that promote cell-to-material interaction. This report examines the use of a novel technique combining compression molding with particulate leaching to create a unique multi-layered scaffold with differential porosities and pore sizes that provides a high level of control to influence cell behavior. These cell behavioral responses were primarily characterized by bridging and penetration of two cell types (epithelial and smooth muscle cells) on the scaffold in vitro. Larger pore sizes corresponded to an increase in pore penetration, and a decrease in pore bridging. In addition, smaller cells (epithelial) penetrated further into the scaffold than larger cells (smooth muscle cells). In vivo evaluation of a multi-layered scaffold was well tolerated for 75 d in a rodent model. This data shows the ability of the components of multi-layered scaffolds to influence cell behavior, and demonstrates the potential for these scaffolds to promote desired tissue outcomes in vivo.
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The role of pore size on vascularization and tissue remodeling in PEG hydrogels
Yu-Chieh Chiu, Ming‐Huei Cheng, Holger Engel et al. · Biomaterials · 2011 · 287 citations