Journal of Tissue Engineering and Regenerative Medicine · 2013 · 136 citations · 31 references
Dental pulp/dentine complex regeneration is essential for constructing biotissue‑engineered tooth roots and offers a promising therapy for irreversible pulpitis. The study aimed to create a three‑dimensional, scaffold‑free stem‑cell sheet‑derived pellet (CSDP) using odontogenic stem cells. SCAPs were isolated, fabricated into CSDPs, and then implanted into human treated dentine matrix fragments and subcutaneously transplanted into immunodeficient mice for six weeks, with cell sheets used as a comparison. CSDPs formed compact aggregates rich in extracellular matrix, expressed higher ALP, DSPP, BSP, and RUNX2, and regenerated a vascularized dental pulp‑like tissue with a continuous dentine‑like layer, demonstrating strong heterotopic pulp/dentine complex formation and potential for bioengineered roots and pulp disease treatment. © 2013 John Wiley & Sons, Ltd.
Dental pulp/dentine complex regeneration is indispensable to the construction of biotissue-engineered tooth roots and represents a promising approach to therapy for irreversible pulpitis. We used a tissue-engineering method based on odontogenic stem cells to design a three-dimensional (3D) and scaffold-free stem-cell sheet-derived pellet (CSDP) with the necessary physical and biological properties. Stem cells were isolated and identified and stem cells from root apical papilla (SCAPs)-based CSDPs were then fabricated and examined. Compact cell aggregates containing a high proportion of extracellular matrix (ECM) components were observed, and the CSDP culture time was prolonged. The expression of alkaline phosphatase (ALP), dentine sialoprotein (DSPP), bone sialoprotein (BSP) and runt-related gene 2 (RUNX2) mRNA was higher in CSDPs than in cell sheets (CSs), indicating that CSDPs have greater odonto/osteogenic potential. To further investigate this hypothesis, CSDPs and CSs were inserted into human treated dentine matrix fragments (hTDMFs) and transplanted into the subcutaneous space in the backs of immunodeficient mice, where they were cultured in vivo for 6 weeks. The root space with CSDPs was filled entirely with a dental pulp-like tissue with well-established vascularity, and a continuous layer of dentine-like tissue was deposited onto the existing dentine. A layer of odontoblast-like cells was found to express DSPP, ALP and BSP, and human mitochondria lined the surface of the newly formed dentine-like tissue. These results clearly indicate that SCAP-CSDPs with a mount of endogenous ECM have a strong capacity to form a heterotopic dental pulp/dentine complex in empty root canals; this method can be used in the fabrication of bioengineered dental roots and also provides an alternative treatment approach for pulp disease. Copyright © 2013 John Wiley & Sons, Ltd.
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Wataru Sonoyama, Yi Liu, Dianji Fang et al. · PLoS ONE · 2006 · 1.3K citations · Full text