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用于肩袖修复中肌腱-骨界面愈合增强的组织模拟膜

Tissue Mimetic Membranes for Healing Augmentation of Tendon-Bone Interface in Rotator Cuff Repair.

作者信息

Zhu Yuwei, Dai Bingyang, Zhang Shian, Liu Jun, Xu Shunxiang, Liu Weiyang, Chen Xin, Zhang Haozhi, Li Quan, Pang Florence Ou-Suet, Li Weiguo, Wen Chunyi, Qin Ling, Xu Jiankun, Ngai To

机构信息

Department of Chemistry, The Chinese University of Hong Kong, Shatin, N. T., Hong Kong, 999077, China.

Musculoskeletal Research Laboratory, Department of Orthopaedics and Traumatology, and Innovative Orthopaedic Biomaterial and Drug Translational Research Laboratory of Li Ka Shing Institute of Health, Faculty of Medicine, The Chinese University of Hong Kong, Shatin, Hong Kong, 999077, China.

出版信息

Adv Mater. 2025 Mar;37(10):e2407358. doi: 10.1002/adma.202407358. Epub 2025 Jan 31.

Abstract

The globally prevalent rotator cuff tear has a high re-rupture rate, attributing to the failure to reproduce the interfacial fibrocartilaginous enthesis. Herein, a hierarchically organized membrane is developed that mimics the heterogeneous anatomy and properties of the natural enthesis and finely facilitates the reconstruction of tendon-bone interface. A biphasic membrane consisting of a microporous layer and a mineralized fibrous layer is constructed through the non-solvent induced phase separation (NIPS) strategy followed by a co-axial electrospinning procedure. Cationic kartogenin (KGN)-conjugated nanogel (nGel-KGN) and osteo-promotive struvite are incorporated within the membranes in a region-specific manner. During in vivo repair, the nGel-KGN-functionalized microporous layer is adjacent to the tendon which intends to suppress scar tissue formation at the lesion and simultaneously heightens chondrogenesis. Meanwhile, the struvite-containing fibrous layer covers the tubercula minus to enhance stem cell aggregation and bony ingrowth. Such tissue-specific features and spatiotemporal release behaviors contribute to effective guidance of specific defect-healing events at the transitional region, further leading to the remarkably promoted regenerative outcome in terms of the fibrocartilaginous tissue formation, collagen fiber alignment, and optimized functional motion of rotator cuff. These findings render a novel biomimetic membrane as a promising material for clinical rotator cuff repair.

摘要

全球普遍存在的肩袖撕裂具有较高的再破裂率,这归因于未能重现界面纤维软骨附着点。在此,我们开发了一种分层组织的膜,它模仿天然附着点的异质解剖结构和特性,并精细地促进肌腱-骨界面的重建。通过非溶剂诱导相分离(NIPS)策略,随后进行同轴电纺程序,构建了一种由微孔层和矿化纤维层组成的双相膜。阳离子软骨素(KGN)共轭纳米凝胶(nGel-KGN)和促骨生长的鸟粪石以区域特异性方式掺入膜内。在体内修复过程中,nGel-KGN功能化的微孔层与肌腱相邻,旨在抑制损伤处瘢痕组织的形成,同时增强软骨生成。与此同时,含鸟粪石的纤维层覆盖小结节,以增强干细胞聚集和骨向内生长。这种组织特异性特征和时空释放行为有助于有效引导过渡区域的特定缺损愈合事件,进而在纤维软骨组织形成、胶原纤维排列以及肩袖功能运动优化方面显著促进再生结果。这些发现使一种新型仿生膜成为临床肩袖修复的有前景的材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d579/11899491/0ede0d7511fd/ADMA-37-2407358-g006.jpg

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