Tissue Mimetic Membranes for Healing Augmentation of Tendon–Bone Interface in Rotator Cuff Repair
Abstract
AbstractThe 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.
Article Details
Authors (15)
Yuwei Zhu
Research Institute of Superconductor Electronics, School of Electronic Science and Engineering & National Key Laboratory of Microwave Photonics (Nanjing University), Nanjing University 1 , Nanjing 210023,
Bingyang Dai
Department of Biomedical Engineering, The Hong Kong Polytechnic University
Shian Zhang
Jun Liu
Shunxiang Xu
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
Weiyang Liu
Max Planck Institute for Intelligent Systems
Xin Chen
Haozhi Zhang
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
Quan Li
Florence Ou‐Suet Pang
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
Weiguo Li
Chunyi Wen
Department of Biomedical Engineering The Hong Kong Polytechnic University Hong Kong 999077 China
Ling Qin
Department of Orthopaedic Surgery, Perelman School of Medicine, University of Pennsylvania
Jiankun Xu
To Ngai