Wang Liren, Liu Yonghang, Lin Zhiqi, Chen Huiang, Liu Bowen, Yan Xiaoyu, Zhu Tonghe, Zhang Qin, Zhao Jinzhong
Department of Sports Medicine, Department of Orthopedics, Shanghai Institute of Microsurgery on Extremities, Shanghai Sixth People's Hospital Affiliated to Shanghai Jiao Tong University School of Medicine, No. 600 Yishan Road, Shanghai, 200233, China.
Regenerative Sports Medicine and Translational Youth Science and Technology Innovation Workroom, Shanghai Jiao Tong University School of Medicine, No. 227 South Chongqing Road, Shanghai, 200025, China.
Bioact Mater. 2024 Apr 25;37:477-492. doi: 10.1016/j.bioactmat.2024.03.029. eCollection 2024 Jul.
Degradable rotator cuff patches, followed over five years, have been observed to exhibit high re-tear rates exceeding 50%, which is attributed to the inability of degradable polymers alone to restore the post-rotator cuff tear (RCT) inflammatory niche. Herein, poly(ester-ferulic acid-urethane)urea (PEFUU) was developed, featuring prolonged anti-inflammatory functionality, achieved by the integration of ferulic acid (FA) into the polyurethane repeating units. PEFUU stably releases FA in vitro, reversing the inflammatory niche produced by M1 macrophages and restoring the directed differentiation of stem cells. Utilizing PEFUU, hierarchical composite nanofiber patch (HCNP) was fabricated, simulating the natural microstructure of the tendon-to-bone interface with an aligned-random alignment. The incorporation of enzymatic hydrolysate derived from decellularized Wharton jelly tissue into the random layer could further enhance cartilage regeneration at the tendon-to-bone interface. Via rat RCT repairing model, HCNP possessing prolonged anti-inflammatory properties uniquely facilitated physiological healing at the tendon-to-bone interface's microstructure. The alignment of fibers was restored, and histologically, the characteristic tripartite distribution of collagen I - collagen II - collagen I was achieved. This study offers a universal approach to the functionalization of degradable polymers and provides a foundational reference for their future applications in promoting the in vivo regeneration of musculoskeletal tissues.
在长达五年的随访中,可降解的肩袖补丁被观察到具有超过50%的高再撕裂率,这归因于仅靠可降解聚合物无法恢复肩袖撕裂(RCT)后的炎症微环境。在此,开发了聚(酯 - 阿魏酸 - 脲)脲(PEFUU),其具有通过将阿魏酸(FA)整合到聚氨酯重复单元中而实现的延长抗炎功能。PEFUU在体外稳定释放FA,逆转由M1巨噬细胞产生的炎症微环境并恢复干细胞的定向分化。利用PEFUU,制备了分层复合纳米纤维补丁(HCNP),其具有对齐 - 随机排列以模拟肌腱 - 骨界面的天然微观结构。将源自脱细胞脐带华通氏胶组织的酶解产物掺入随机层可进一步增强肌腱 - 骨界面处的软骨再生。通过大鼠RCT修复模型,具有延长抗炎特性的HCNP独特地促进了肌腱 - 骨界面微观结构的生理愈合。纤维排列得以恢复,并且在组织学上,实现了I型胶原 - II型胶原 - I型胶原的特征性三方分布。本研究为可降解聚合物的功能化提供了一种通用方法,并为其未来在促进肌肉骨骼组织体内再生中的应用提供了基础参考。