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用于高效骨软骨再生的3D打印双谱系诱导方法

3D-Printed Dual-Lineage Inductive Approach for Efficient Osteochondral Regeneration.

作者信息

Ouyang Xinyi, Li Rui, Sun Wei, Gu Yuqing, Lin Junxin, Fan Zhang, Yao Xudong, Gu Hongyi, Xie Chang, Li Wenyue, Yang Yifei, Yan Yiyang, Wei Wei, Wu Bingbing, Chen Xiuying, He Bin, Zhang Shufang, Hong Yi, Cui Zhanfeng, Wang Xiaozhao

机构信息

Institute of Biomedical Engineering, Department of Engineering Science, University of Oxford, Oxford OX12JD, U.K.

Department of Sports Medicine of the Second Affiliated Hospital, and Liangzhu Laboratory, Zhejiang University School of Medicine, Hangzhou, Zhejiang 310058, China.

出版信息

ACS Appl Mater Interfaces. 2025 Apr 9;17(14):20613-20627. doi: 10.1021/acsami.4c14063. Epub 2025 Mar 31.

Abstract

Osteochondral defect regeneration is challenging due to the mismatch between cartilage and subchondral bone. We developed a functionalized scaffold replicating the natural architecture, biochemical and biomechanical environment of both tissues to promote concurrent regeneration. Our bilayered, zone-specific scaffold combines tailored materials for each tissue type: gelatin methacryloyl (GelMA), modified hyaluronic acid, and umbilical cord-derived extracellular matrix (ECM) for the cartilage layer; GelMA, placenta-derived ECM, and nano amorphous calcium phosphate for the osseous layer. Using 3D digital light-processing printing, we constructed the scaffold with spatially distributed biochemical and biomechanical signaling. This approach created dual chondro-/osteogenic microenvironments facilitating bone marrow mesenchymal stem cell differentiation. studies demonstrated concurrent regeneration of cartilage and subchondral bone tissues with robust integration. This 3D-printed biomimetic scaffold, featuring dual-lineage inductive properties, shows promising potential for efficient osteochondral regeneration and addresses complex tissue engineering requirements.

摘要

由于软骨和软骨下骨之间的不匹配,骨软骨缺损再生具有挑战性。我们开发了一种功能化支架,复制了两种组织的自然结构、生化和生物力学环境,以促进同时再生。我们的双层、区域特异性支架为每种组织类型组合了定制材料:用于软骨层的甲基丙烯酰化明胶(GelMA)、改性透明质酸和脐带衍生的细胞外基质(ECM);用于骨层的GelMA、胎盘衍生的ECM和纳米无定形磷酸钙。使用3D数字光处理打印技术,我们构建了具有空间分布的生化和生物力学信号的支架。这种方法创造了双重软骨/成骨微环境,促进骨髓间充质干细胞分化。研究证明了软骨和软骨下骨组织的同时再生以及牢固的整合。这种具有双谱系诱导特性的3D打印仿生支架在高效骨软骨再生方面显示出有前景的潜力,并满足了复杂的组织工程要求。

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