周围神经损伤的金属基再生策略:从可生物降解离子源到稳定的导电植入物。

IF 9.6 Q1 ENGINEERING, BIOMEDICAL
Biomaterials research Pub Date : 2025-07-22 eCollection Date: 2025-01-01 DOI:10.34133/bmr.0219
Hyewon Kim, Khandoker Asiqur Rahaman, Jieun Kwon, Seohyeon Cho, Seok Chung, Hyung-Seop Han, Yu-Chan Kim
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引用次数: 0

摘要

周围神经损伤是现代老龄化社会中常见的健康问题,唯一可用的治疗方法是自体移植物移植。不幸的是,由于供体的可用性和免疫排斥,自体移植物常常受到限制。此外,周围神经系统的再生能力有限,使得周围神经损伤的治疗具有挑战性。基于金属的再生医学和组织工程策略为这一问题提供了先进的解决方案。金属基生物材料,如导管、细丝、合金、水凝胶和陶瓷,可以传递生物功能金属离子,促进轴突生长和功能恢复。同时,基于金属的电磁刺激显示了神经再生和炎症调节的潜力。金属基生物材料在促进周围神经再生方面的潜力突出了组织工程和再生医学进一步研究的必要性。然而,快速降解、长期生物相容性以及针对损伤类型的必要优化仍有待探索。本文综述了金属基生物材料在周围神经再生研究中的应用。其目的是展示该领域的先进技术,这些技术可能成为自体移植物的可行替代品,在再生医学领域提供变革性的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Metal-Based Regenerative Strategies for Peripheral Nerve Injuries: From Biodegradable Ion Source to Stable Conductive Implants.

Peripheral nerve injury is a common health issue in modern aging societies, with the only treatment available being autograft transplantation. Unfortunately, autograft is often limited due to donor availability and immune rejection. Additionally, the peripheral nervous system has limited regenerative capacity, making the treatment of peripheral nerve injuries challenging. Metal-based regenerative medicine and tissue engineering strategies provide advanced solutions to the problem. Metal-based biomaterials such as conduits, filaments, alloys, hydrogels, and ceramics can deliver biofunctional metal ions and promote axonal growth and functional recovery. In parallel, metal-based electromagnetic stimulation demonstrates potential for nerve regeneration and inflammation regulation. The potential of metal-based biomaterials in promoting peripheral nerve regeneration highlights the need for further research in tissue engineering and regenerative medicine. However, rapid degradation, long-term biocompatibility, and necessary optimization regarding injury types remain to be explored. This review summarizes the reported metal-based biomaterials utilized in peripheral nerve regeneration research. The aim is to showcase advanced technologies available in the field, which may potentially become a viable alternative to autografts, offering transformative applications in the regenerative medical field.

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