AI Article Synopsis

  • The study focuses on creating specialized scaffolds for regenerating the complex structures within the tooth-supporting periodontium, which includes cementum, periodontal ligament (PDL), and alveolar bone.
  • The scaffolds, made from a mixture of polycaprolactone and hydroxyapatite, feature microchannels tailored for each tissue type and deliver specific growth factors at different stages for effective healing.
  • Results showed that the scaffolds supported the growth of various stem cells, resulting in the formation of tissue-specific structures that signify potential for successful periodontal tissue regeneration.

Article Abstract

Tooth-supporting periodontium forms a complex with multiple tissues, including cementum, periodontal ligament (PDL), and alveolar bone. In this study, we developed multiphase region-specific microscaffolds with spatiotemporal delivery of bioactive cues for integrated periodontium regeneration. Polycarprolactione-hydroxylapatite (90:10 wt%) scaffolds were fabricated using three-dimensional printing seamlessly in three phases: 100-μm microchannels in Phase A designed for cementum/dentin interface, 600-μm microchannels in Phase B designed for the PDL, and 300-μm microchannels in Phase C designed for alveolar bone. Recombinant human amelogenin, connective tissue growth factor, and bone morphogenetic protein-2 were spatially delivered and time-released in Phases A, B, and C, respectively. Upon 4-week in vitro incubation separately with dental pulp stem/progenitor cells (DPSCs), PDL stem/progenitor cells (PDLSCs), or alveolar bone stem/progenitor cells (ABSCs), distinctive tissue phenotypes were formed with collagen I-rich fibers especially by PDLSCs and mineralized tissues by DPSCs, PDLSCs, and ABSCs. DPSC-seeded multiphase scaffolds upon in vivo implantation yielded aligned PDL-like collagen fibers that inserted into bone sialoprotein-positive bone-like tissue and putative cementum matrix protein 1-positive/dentin sialophosphoprotein-positive dentin/cementum tissues. These findings illustrate a strategy for the regeneration of multiphase periodontal tissues by spatiotemporal delivery of multiple proteins. A single stem/progenitor cell population appears to differentiate into putative dentin/cementum, PDL, and alveolar bone complex by scaffold's biophysical properties and spatially released bioactive cues.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC3993023PMC
http://dx.doi.org/10.1089/ten.TEA.2013.0386DOI Listing

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