Dai Yuan, Lu Tingwei, Shao Minghao, Lyu Feizhou
Department of Orthopedics, Huashan Hospital, Fudan University, Shanghai, China.
Department of Oral and Craniomaxillofacial Surgery, Shanghai Ninth People's Hospital, School of Medicine, Shanghai Jiao Tong University, Shanghai, China.
Front Bioeng Biotechnol. 2022 Nov 1;10:1011783. doi: 10.3389/fbioe.2022.1011783. eCollection 2022.
Repairing and regenerating injured neural tissue remains a worldwide challenge. Tissue engineering (TE) has been highlighted as a potential solution to provide functional substitutes for damaged organs or tissue. Among the biocompatible and biodegradable materials, poly-L-lactic-acid (PLLA) has been widely investigated in the TE field because of its tunable mechanical properties and tailorable surface functionalization. PLLA-based biomaterials can be engineered as scaffolds that mimic neural tissue extracellular matrix and modulate inflammatory responses. With technological advances, PLLA-based scaffolds can also have well-controlled three-dimensional sizes and structures to facilitate neurite extension. Furthermore, PLLA-based scaffolds have the potential to be used as drug-delivery carriers with controlled release. Moreover, owing to the good piezoelectric properties and capacity to carry conductive polymers, PLLA-based scaffolds can be combined with electrical stimulation to maintain stemness and promote axonal guidance. This mini-review summarizes and discusses the fabrication and modification techniques utilized in the PLLA-based biomaterial scaffolds for neural TE. Recent applications in peripheral nerve and spinal cord regeneration are also presented, and it is hoped that this will guide the future development of more effective and multifunctional PLLA-based nerve scaffolds.
修复和再生受损神经组织仍然是一项全球性挑战。组织工程(TE)已被视为一种潜在的解决方案,可为受损器官或组织提供功能替代物。在生物相容性和可生物降解材料中,聚-L-乳酸(PLLA)因其可调的机械性能和可定制的表面功能化而在组织工程领域得到广泛研究。基于PLLA的生物材料可设计成模拟神经组织细胞外基质并调节炎症反应的支架。随着技术进步,基于PLLA的支架还可具有精确控制的三维尺寸和结构,以促进神经突生长。此外,基于PLLA的支架有潜力用作控释药物递送载体。而且,由于良好的压电性能和承载导电聚合物的能力,基于PLLA的支架可与电刺激相结合,以维持干细胞状态并促进轴突导向。本综述总结并讨论了用于神经组织工程的基于PLLA的生物材料支架的制造和改性技术。还介绍了其在周围神经和脊髓再生中的最新应用,希望这将指导未来更有效和多功能的基于PLLA的神经支架的发展。