Bai Xuejian, Yang Yihan, Chu Jinwei, Deng Yang, Li Mingwei, Yang Huaiyu
The Third Department of Orthopedic Surgery, Fuxin Mining General Hospital of Liaoning Health Industry Group, Liaoning, China.
Qingdao Film Academy, Qingdao, China.
Front Bioeng Biotechnol. 2025 Aug 22;13:1643430. doi: 10.3389/fbioe.2025.1643430. eCollection 2025.
Tendon/ligament (T/L) injuries sustained during motion are highly prevalent and severely impact athletes' careers and quality of life. Current treatments, including autografts, allografts, and synthetic ligaments, have limitations such as donor site morbidity, immune rejection, and biomechanical mismatch, especially under dynamic loading conditions encountered in motion. 3D bioprinting offers a revolutionary approach for constructing patient-specific T/L grafts. This Mini Review summarizes recent advancements in utilizing 3D bioprinting to fabricate patient-specific grafts for T/L repair, with a particular focus on strategies catering to the functional demands of "in motion" recovery. Key emerging trends in bioink development (balancing mechanical properties with bioactivity), cell selection and optimization, printing strategies (e.g., multi-material hierarchical printing, biomimetic design for complex mechanical loading), and post-printing maturation culture (e.g., multi-modal mechanical stimulation via bioreactors) are discussed. Furthermore, this review highlights critical challenges in the field, including precise matching and long-term maintenance of graft mechanical properties, effective vascularization and innervation, scalable manufacturing and quality control, and hurdles in clinical translation. Finally, this review underscores the immense potential of 3D bioprinting in personalized, functional T/L repair and envisions future research directions, such as the application of smart biomaterials and 4D bioprinting, refined maturation strategies, and bioprinting technologies, ultimately aiming to achieve robust tissue functional restoration "in motion."
运动过程中发生的肌腱/韧带(T/L)损伤非常普遍,严重影响运动员的职业生涯和生活质量。目前的治疗方法,包括自体移植、异体移植和合成韧带,都存在局限性,如供体部位发病、免疫排斥和生物力学不匹配,尤其是在运动中遇到的动态负荷条件下。3D生物打印为构建患者特异性T/L移植物提供了一种革命性的方法。本综述总结了利用3D生物打印制造用于T/L修复的患者特异性移植物的最新进展,特别关注满足“运动中”恢复功能需求的策略。讨论了生物墨水开发(平衡机械性能与生物活性)、细胞选择和优化、打印策略(如多材料分层打印、针对复杂机械负荷的仿生设计)以及打印后成熟培养(如通过生物反应器进行多模式机械刺激)等关键新兴趋势。此外,本综述强调了该领域的关键挑战,包括移植物机械性能的精确匹配和长期维持、有效的血管化和神经支配、可扩展制造和质量控制以及临床转化中的障碍。最后,本综述强调了3D生物打印在个性化、功能性T/L修复中的巨大潜力,并展望了未来的研究方向,如智能生物材料和4D生物打印的应用、优化的成熟策略以及生物打印技术,最终目标是在“运动中”实现强大的组织功能恢复。