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Material and regenerative properties of an osteon-mimetic cortical bone-like scaffold. | LitMetric

Material and regenerative properties of an osteon-mimetic cortical bone-like scaffold.

Regen Biomater

Biomimetic Materials and Tissue Engineering Laboratory, Department of Chemical Engineering, University of South Carolina, Columbia, SC, USA.

Published: March 2019

AI Article Synopsis

  • The research aimed to create a scaffold that resembles cortical bone, focusing on making it rigid, resorbable, and capable of supporting new bone growth (osteoconductive).
  • They developed microsheets made of peptide-functionalized nanofibers with a calcium phosphate content similar to natural bone, which were then arranged into microtubes mimicking osteon structures.
  • The scaffold demonstrated the ability to support the growth of new blood vessels (vasculogenesis) and bone cells (osteogenesis) without additional growth factors, thanks to its engineered properties that facilitated nutrient flow and cellular activities.

Article Abstract

The objective of this work was to fabricate a rigid, resorbable and osteoconductive scaffold by mimicking the hierarchical structure of the cortical bone. Aligned peptide-functionalize nanofiber microsheets were generated with calcium phosphate (CaP) content similar to that of the natural cortical bone. Next, the CaP-rich fibrous microsheets were wrapped around a microneedle to form a laminated microtube mimicking the structure of an osteon. Then, a set of the osteon-mimetic microtubes were assembled around a solid rod and the assembly was annealed to fuse the microtubes and form a shell. Next, an array of circular microholes were drilled on the outer surface of the shell to generate a cortical bone-like scaffold with an interconnected network of Haversian- and Volkmann-like microcanals. The CaP content, porosity and density of the bone-mimetic microsheets were 240 wt%, 8% and 1.9 g/ml, respectively, which were close to that of natural cortical bone. The interconnected network of microcanals in the fused microtubes increased permeability of a model protein in the scaffold. The cortical scaffold induced osteogenesis and vasculogenesis in the absence of bone morphogenetic proteins upon seeding with human mesenchymal stem cells and endothelial colony-forming cells. The localized and timed-release of morphogenetic factors significantly increased the extent of osteogenic and vasculogenic differentiation of human mesenchymal stem cells and endothelial colony-forming cells in the cortical scaffold. The cortical bone-mimetic nature of the cellular construct provided balanced rigidity, resorption rate, osteoconductivity and nutrient diffusivity to support vascularization and osteogenesis.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6446997PMC
http://dx.doi.org/10.1093/rb/rbz008DOI Listing

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