Redolfi Riva Eugenio, Özkan Melis, Stellacci Francesco, Micera Silvestro
Department of Excellence in Robotics and AI, The BioRobotics Institute, Scuola Superiore Sant'Anna, Pisa, Italy.
Bertarelli Foundation Chair in Translational Neural Engineering, Center for Neuroprosthetics and Institute of Bioengineering, École Polytechnique Federale de Lausanne, Lausanne, Switzerland.
Front Cell Dev Biol. 2024 Nov 6;12:1491260. doi: 10.3389/fcell.2024.1491260. eCollection 2024.
Peripheral nerve repair remains a major clinical challenge, particularly in the pursuit of therapeutic approaches that ensure adequate recovery of patient's activity of daily living. Autografts are the gold standard in clinical practice for restoring lost sensorimotor functions nowadays. However, autografts have notable drawbacks, including dimensional mismatches and the need to sacrifice one function to restore another. Engineered nerve guidance conduits have therefore emerged as promising alternatives. While these conduits show surgical potential, their clinical use is currently limited to the repair of minor injuries, as their ability to reinnervate limiting gap lesions is still unsatisfactory. Therefore, improving patient functional recovery requires a deeper understanding of the cellular mechanisms involved in peripheral nerve regeneration and the development of therapeutic strategies that can precisely modulate these processes. Interest has grown in the use of external energy sources, such as light, ultrasound, electrical, and magnetic fields, to activate cellular pathways related to proliferation, differentiation, and migration. Recent research has explored combining these energy sources with tailored nanostructured materials as nanotransducers to enhance selectivity towards the target cells. This review aims to present the recent findings on this innovative strategy, discussing its potential to support nerve regeneration and its viability as an alternative to autologous transplantation.
周围神经修复仍然是一项重大的临床挑战,尤其是在寻求能够确保患者日常生活活动充分恢复的治疗方法方面。自体移植是目前临床实践中恢复失去的感觉运动功能的金标准。然而,自体移植有明显的缺点,包括尺寸不匹配以及需要牺牲一种功能来恢复另一种功能。因此,工程化神经引导导管已成为有前景的替代方案。虽然这些导管显示出手术潜力,但它们目前在临床上仅限于修复轻伤,因为它们重新支配有限间隙损伤的能力仍然不尽人意。因此,改善患者的功能恢复需要更深入地了解周围神经再生所涉及的细胞机制,并开发能够精确调节这些过程的治疗策略。人们越来越关注使用外部能量源,如光、超声、电场和磁场,来激活与增殖、分化和迁移相关的细胞途径。最近的研究探索了将这些能量源与定制的纳米结构材料结合作为纳米换能器,以增强对靶细胞的选择性。本综述旨在介绍关于这一创新策略的最新发现,讨论其支持神经再生的潜力以及作为自体移植替代方案的可行性。