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用于复杂组织再生的分层双分子层结构。

A hierarchical bilayer architecture for complex tissue regeneration.

作者信息

Yu Min, Luo Dan, Qiao Jing, Guo Jiusi, He Danqing, Jin Shanshan, Tang Lin, Wang Yu, Shi Xin, Mao Jing, Cui Shengjie, Fu Yu, Li Zixin, Liu Dawei, Zhang Ting, Zhang Chi, Li Zhou, Zhou Yongsheng, Liu Yan

机构信息

Laboratory of Biomimetic Nanomaterials, Department of Orthodontics, Peking University School and Hospital of Stomatology & National Center of Stomatology & National Clinical Research Center for Oral Diseases & National Engineering Laboratory for Digital and Material Technology of Stomatology & Beijing Key Laboratory of Digital Stomatology & Research Center of Engineering and Technology for Computerized Dentistry Ministry of Health & NMPA Key Laboratory for Dental Materials, Beijing, 100081, China.

Department of Prosthodontics, Peking University School and Hospital of Stomatology & National Center of Stomatology & National Clinical Research Center for Oral Diseases & National Engineering Laboratory for Digital and Material Technology of Stomatology & Beijing Key Laboratory of Digital Stomatology & Research Center of Engineering and Technology for Computerized Dentistry Ministry of Health & NMPA Key Laboratory for Dental Materials, Beijing, 100081, China.

出版信息

Bioact Mater. 2021 Sep 16;10:93-106. doi: 10.1016/j.bioactmat.2021.08.024. eCollection 2022 Apr.

Abstract

Engineering a complete, physiologically functional, periodontal complex structure remains a great clinical challenge due to the highly hierarchical architecture of the periodontium and coordinated regulation of multiple growth factors required to induce stem cell multilineage differentiation. Using biomimetic self-assembly and microstamping techniques, we construct a hierarchical bilayer architecture consisting of intrafibrillarly mineralized collagen resembling bone and cementum, and unmineralized parallel-aligned fibrils mimicking periodontal ligament. The prepared biphasic scaffold possesses unique micro/nano structure, differential mechanical properties, and growth factor-rich microenvironment between the two phases, realizing a perfect simulation of natural periodontal hard/soft tissue interface. The interconnected porous hard compartment with a Young's modulus of 1409.00 ± 160.83 MPa could induce cross-arrangement and osteogenic differentiation of stem cells , whereas the micropatterned soft compartment with a Young's modulus of 42.62 ± 4.58 MPa containing abundant endogenous growth factors, could guide parallel arrangement and fibrogenic differentiation of stem cells . After implantation in critical-sized complete periodontal tissue defect, the biomimetic bilayer architecture potently reconstructs native periodontium with the insertion of periodontal ligament fibers into newly formed cementum and alveolar bone by recruiting host mesenchymal stem cells and activating the transforming growth factor beta 1/Smad3 signaling pathway. Taken together, integration of self-assembly and microstamping strategies could successfully fabricate a hierarchical bilayer architecture, which exhibits great potential for recruiting and regulating host stem cells to promote synergistic regeneration of hard/soft tissues.

摘要

由于牙周组织高度分层的结构以及诱导干细胞多谱系分化所需的多种生长因子的协同调节,构建一个完整的、具有生理功能的牙周复合结构仍然是一个巨大的临床挑战。利用仿生自组装和微冲压技术,我们构建了一种分层双层结构,该结构由类似骨和牙骨质的原纤维内矿化胶原蛋白以及模拟牙周韧带的非矿化平行排列纤维组成。制备的双相支架具有独特的微/纳米结构、不同的力学性能以及两相之间富含生长因子的微环境,实现了对天然牙周软硬组织界面的完美模拟。杨氏模量为1409.00±160.83 MPa的相互连接的多孔硬相能够诱导干细胞的交叉排列和成骨分化,而杨氏模量为42.62±4.58 MPa且含有丰富内源性生长因子的微图案化软相能够引导干细胞的平行排列和纤维化分化。在临界尺寸的全牙周组织缺损中植入后,仿生双层结构通过招募宿主间充质干细胞并激活转化生长因子β1/Smad3信号通路,有力地重建了天然牙周组织,使牙周韧带纤维插入新形成的牙骨质和牙槽骨中。综上所述,自组装和微冲压策略的整合能够成功制造出一种分层双层结构,该结构在招募和调节宿主干细胞以促进软硬组织协同再生方面具有巨大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0aa9/8636921/2ee4cf7c7097/ga1.jpg

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