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基于区域脱钙骨框架和软骨前微球的双相仿生支架用于骨软骨缺损修复。

Biphasic biomimetic scaffolds based on a regionally decalcified bone framework and pre-chondrogenic microspheres for osteochondral defect repair.

作者信息

Liang Zhuo, Pan Qingqing, Xue Fei, Zhang Jingdi, Fan Zhenlin, Wang Weiyun, Guo Xueqiang, Qian Zhuang, Shen Yaping, Song Wenjuan, Wang Lei, Zhou Guangdong, He Yong, Ren Wenjie

机构信息

Clinical Medical Center of Tissue Engineering and Regeneration, The First Affiliated Hospital of Xinxiang Medical University, The Third Affiliated Hospital of Xinxiang Medical University, Institutes of Health Central Plain, Xinxiang Medical University, Xinxiang, 453003, China.

Department of Plastic and Reconstructive Surgery, Shanghai 9th People's Hospital, Shanghai Key Laboratory of Tissue Engineering, Shanghai Jiao Tong University School of Medicine, Shanghai, 200011, China.

出版信息

Mater Today Bio. 2025 Jan 13;31:101494. doi: 10.1016/j.mtbio.2025.101494. eCollection 2025 Apr.

Abstract

Osteochondral defects are still facing a significant challenge in clinical surgery, making post-trauma repair difficult. Tissue engineering has provided a promising approach to solving these defects. However, existing scaffolds cannot replicate the complex biphasic cartilage-bone microenvironment with accuracy. We aimed to develop a biphasic biomimetic scaffold with regionally regulated vascularization that promoted chondrogenesis and osteogenesis through bidirectional regulation of endochondral ossification. This scaffold consisted of pre-chondrogenic microspheres (PCMs) and a decalcified bone frame prepared by decalcifying the cartilage layer and bone layer of the scaffold to varying degrees. Incorporation of PCMs into the cartilage layer created a microenvironment that promoted cartilage regeneration while axitinib was modified to inhibit vascularization and enhance cartilage regeneration. The bone layer provided a microenvironment that promoted endochondral ossification and facilitated bone repair. studies have shown that axitinib-modified cartilage layers significantly inhibit the VEGF expression of pre-chondrogenic cells, while decalcified bone powder from the bone layer significantly promotes the ossification of PCMs. experiments indicated that this decalcified bone frame controls the endochondral ossification of PCMs through regionalized angiogenesis, promoting the integrated regeneration and reconstruction of osteochondral defects in rabbit knee joints. These results suggest that our designed demineralized bone frame can precisely engineer the osteochondral regeneration microenvironment, providing theoretical guidance for the integrated regeneration and repair of anisotropic tissue injuries.

摘要

骨软骨缺损在临床手术中仍面临重大挑战,导致创伤后修复困难。组织工程为解决这些缺损提供了一种有前景的方法。然而,现有的支架无法精确复制复杂的双相软骨-骨微环境。我们旨在开发一种具有区域调节血管化的双相仿生支架,通过对软骨内骨化的双向调节来促进软骨生成和成骨。这种支架由软骨前微球(PCM)和通过对支架的软骨层和骨层进行不同程度脱钙制备的脱钙骨框架组成。将PCM掺入软骨层创造了一个促进软骨再生的微环境,同时阿昔替尼被修饰以抑制血管化并增强软骨再生。骨层提供了一个促进软骨内骨化并促进骨修复的微环境。研究表明,阿昔替尼修饰的软骨层显著抑制软骨前细胞的VEGF表达,而来自骨层的脱钙骨粉显著促进PCM的骨化。实验表明,这种脱钙骨框架通过区域化血管生成控制PCM的软骨内骨化,促进兔膝关节骨软骨缺损的整体再生和重建。这些结果表明,我们设计的脱矿骨框架可以精确构建骨软骨再生微环境,为各向异性组织损伤的整体再生和修复提供理论指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7950/11783122/581862d9f6c7/ga1.jpg

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