Su Siheng, Wang Jilong
Department of Mechanical Engineering, California State University, Fullerton, CA 92831, USA.
Key Laboratory of Clean Dyeing and Finishing Technology of Zhejiang Province, College of Textile and Garment, Shaoxing University, Shaoxing 312000, China.
Biomimetics (Basel). 2025 Mar 31;10(4):213. doi: 10.3390/biomimetics10040213.
Peripheral nerve injuries (PNIs) pose significant challenges to recovery, often resulting in impaired function and quality of life. To address these challenges, nerve guidance conduits (NGCs) are being developed as effective strategies to promote nerve regeneration by providing a supportive framework that guides axonal growth and facilitates reconnection of severed nerves. Among the materials being explored, graphene-based materials (GBMs) have emerged as promising candidates due to their unique properties. Their unique properties-such as high mechanical strength, excellent electrical conductivity, and favorable biocompatibility-make them ideal for applications in nerve repair. The integration of 3D printing technologies further enhances the development of GBM-based NGCs, enabling the creation of scaffolds with complex architectures and precise topographical cues that closely mimic the natural neural environment. This customization significantly increases the potential for successful nerve repair. This review offers a comprehensive overview of properties of GBMs, the principles of 3D printing, and key design strategies for 3D-printed NGCs. Additionally, it discusses future perspectives and research directions that could advance the application of 3D-printed GBMs in nerve regeneration therapies.
周围神经损伤(PNIs)给恢复带来了重大挑战,常常导致功能受损和生活质量下降。为应对这些挑战,神经引导导管(NGCs)正在被开发为一种有效的策略,通过提供一个支持性框架来引导轴突生长并促进切断神经的重新连接,从而促进神经再生。在正在探索的材料中,基于石墨烯的材料(GBMs)因其独特的性能而成为有前途的候选材料。它们的独特性能,如高机械强度、优异的导电性和良好的生物相容性,使其成为神经修复应用的理想材料。3D打印技术的整合进一步推动了基于GBM的NGCs的发展,能够创建具有复杂结构和精确地形线索的支架,紧密模拟自然神经环境。这种定制显著增加了神经修复成功的可能性。本综述全面概述了GBMs的特性、3D打印原理以及3D打印NGCs的关键设计策略。此外,还讨论了未来的前景和研究方向,这些方向可能推动3D打印GBMs在神经再生治疗中的应用。