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Controlled release of odontogenic exosomes from a biodegradable vehicle mediates dentinogenesis as a novel biomimetic pulp capping therapy

牙髓(牙) 矿物三氧化物骨料 成牙本质细胞 牙髓干细胞 牙本质 盖髓 牙本质形成 牙科 化学 微泡 牙本质小管 牙髓切断术 控制释放 臼齿 牙髓炎 细胞生物学 间充质干细胞 牙齿再矿化 胞外囊泡 牙体牙髓科 纳米囊 外体 牙乳头 共焦显微镜 细胞外基质 矿化组织 生物医学工程 干细胞
作者
W. Benton Swanson,Ting Gong,Zhen Zhang,M.J. Eberle,David Niemann,Ruonan Dong,Kunal J. Rambhia,X. Peter
出处
期刊:Journal of Controlled Release [Elsevier BV]
卷期号:324: 679-694 被引量:89
标识
DOI:10.1016/j.jconrel.2020.06.006
摘要

Mineralized enamel and dentin provide protection to the dental pulp, which is vital tissue rich with cells, vasculature, and nerves in the inner tooth. Dental caries left untreated threaten exposure of the dental pulp, providing facile access for bacteria to cause severe infection both in the pulp and systemically. Dental materials which stimulate the formation of a protective dentin bridge after insult are necessary to seal the pulp chamber in an effort to maintain natural dentition and prevent pulpal infection. Dental materials to date including calcium hydroxide paste, mineral trioxide aggregate, and glass ionomer resin, are used with mixed results. Herein we exploited the cell-cell communicative properties of exosomes, extracellular vesicles derived from both mineralizing primary human dental pulp stem cells (hDPSCs) and an immortalized murine odontoblast cell line (MDPC-23), to catalyze the formation of a reactionary dentin bridge by recruiting endogenous stem cells of the dental pulp, through an easy-to-handle delivery vehicle which allows for their therapeutic controlled delivery at the pulp interface. Exosomes derived from both hDPSCs and MDPCs upregulated odontogenic gene expression and increased mineralization in vitro. We designed an amphiphilic synthetic polymeric vehicle from a triblock copolymer which encapsulates exosomes by polymeric self-assembly and maintains their biologic integrity throughout release up to 8–12 weeks. The controlled release of odontogenic exosomes resulted in a reparative dentin bridge formation, superior to glass-ionomer cement alone in vivo, in a rat molar pulpotomy model after six weeks. We have developed a platform for the encapsulation and controlled, tunable release of cell-derived exosomes, which maintains their advantageous physiologic properties reflective of the donor cells. This platform is used to modulate downstream recipient cells towards a designed dentinogenic trajectory in vitro and in vivo. Additionally, we have demonstrated the utility of an immortalized cell line to produce a high yield of exosomes with cross-species efficacy.
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