Yu Chenghao, Chen Renjie, Chen Jinli, Wang Tianrui, Wang Yawen, Zhang Xiaopei, Wang Yuanfei, Wu Tong, Yu Tengbo
Department of Orthopedic Surgery, Qingdao Municipal Hospital, University of Health and Rehabilitation Sciences, Qingdao, Shandong, 266071, China.
The Affiliated Hospital of Qingdao University, Qingdao Medical College, Qingdao University, Qingdao, Shandong, 266000, China.
Mater Today Bio. 2024 May 22;26:101099. doi: 10.1016/j.mtbio.2024.101099. eCollection 2024 Jun.
Advancements in tissue engineering are crucial for successfully healing tendon-bone connections, especially in situations like anterior cruciate ligament (ACL) restoration. This study presents a new and innovative three-dimensional scaffold, reinforced with nanofibers, that is specifically intended for acellular tendon complexes. The scaffold consists of a distinct layered arrangement comprising an acellular tendon core, a middle layer of polyurethane/type I collagen (PU/Col I) yarn, and an outside layer of poly (L-lactic acid)/bioactive glass (PLLA/BG) nanofiber membrane. Every layer is designed to fulfill specific yet harmonious purposes. The acellular tendon core is a solid structural base and a favorable environment for tendon cell functions, resulting in considerable tensile strength. The central PU/Col I yarn layer is vital in promoting the tendinogenic differentiation of stem cells derived from tendons and increasing the expression of critical tendinogenic factors. The external PLLA/BG nanofiber membrane fosters the process of bone marrow mesenchymal stem cells differentiating into bone cells and enhances the expression of markers associated with bone formation. Our scaffold's biocompatibility and multi-functional design were confirmed through extensive evaluations, such as histological staining and biomechanical analyses. These assessments combined showed notable enhancements in ACL repair and healing. This study emphasizes the promise of multi-layered nanofiber scaffolds in orthopedic tissue engineering and also introduces new possibilities for the creation of improved materials for regenerating the tendon-bone interface.
组织工程学的进展对于成功修复肌腱 - 骨连接至关重要,尤其是在前交叉韧带(ACL)修复等情况下。本研究提出了一种新型的、创新的三维支架,该支架由纳米纤维增强,专门用于无细胞肌腱复合体。该支架由独特的分层结构组成,包括无细胞肌腱核心、聚氨酯/ I型胶原蛋白(PU/Col I)纱线中间层和聚(L - 乳酸)/生物活性玻璃(PLLA/BG)纳米纤维膜外层。每一层都设计用于实现特定但相互协调的目的。无细胞肌腱核心是一个坚实的结构基础,为肌腱细胞功能提供了有利环境,具有相当大的拉伸强度。中间的PU/Col I纱线层对于促进源自肌腱的干细胞的肌腱分化以及增加关键肌腱生成因子的表达至关重要。外部的PLLA/BG纳米纤维膜促进骨髓间充质干细胞向骨细胞分化的过程,并增强与骨形成相关标志物的表达。通过广泛的评估,如组织学染色和生物力学分析,证实了我们支架的生物相容性和多功能设计。这些评估综合显示出ACL修复和愈合有显著改善。本研究强调了多层纳米纤维支架在骨科组织工程中的前景,也为创建用于再生肌腱 - 骨界面的改良材料引入了新的可能性。