牙周膜干细胞
牙周炎
再生(生物学)
细胞生物学
骨愈合
炎症
材料科学
牙槽
生物医学工程
脚手架
间充质干细胞
干细胞
祖细胞
化学
免疫学
牙科
医学
生物
生物化学
解剖
碱性磷酸酶
酶
作者
Guang‐Tao Yu,Wenxiang Zhu,Yuyue Zhao,Hao Cui,Hao Chen,Yan Chen,Tingting Ning,Mingdeng Rong,Lang Rao,Dandan Ma
出处
期刊:Biofabrication
[IOP Publishing]
日期:2024-01-19
卷期号:16 (2): 025007-025007
被引量:9
标识
DOI:10.1088/1758-5090/ad2081
摘要
Abstract The suitable microenvironment of bone regeneration is critically important for periodontitis-derived bone defect repair. Three major challenges in achieving a robust osteogenic reaction are the exist of oral inflammation, pathogenic bacteria invasion and unaffluent seed cells. Herein, a customizable and multifunctional 3D-printing module was designed with glycidyl methacrylate (GMA) modified epsilon-poly-L-lysine (EPLGMA) loading periodontal ligament stem cells (PDLSCs) and myeloid-derived suppressive cells membrane vesicles (MDSCs-MV) bioink (EPLGMA/PDLSCs/MDSCs-MVs, abbreviated as EPM) for periodontitis-derived bone defect repair. The EPM showed excellent mechanical properties and physicochemical characteristics, providing a suitable microenvironment for bone regeneration. In vitro , EPMs presented effectively kill the periodontopathic bacteria depend on the natural antibacterial properties of the EPL. Meanwhile, MDSCs-MV was confirmed to inhibit T cells through CD73/CD39/adenosine signal pathway, exerting an anti-inflammatory role. Additionally, seed cells of PDLSCs provide an adequate supply for osteoblasts. Moreover, MDSCs-MV could significantly enhance the mineralizing capacity of PDLSCs-derived osteoblast. In the periodontal bone defect rat model, the results of micro-CT and histological staining demonstrated that the EPM scaffold similarly had an excellent anti-inflammatory and bone regeneration efficacy in vivo . This biomimetic and multifunctional 3D-printing bioink opens new avenues for periodontitis-derived bone defect repair and future clinical application.
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