Gao Hongxia, Shen Huoyun, Zhang Xunrui, Liu Yaqiong, Shang Yuqing, Sun Shaolan, Guan Wenchao, Gu Xiaosong, Yang Yumin, Li Guicai
Key Laboratory of Neuroregeneration, Co-innovation Center of Neuroregeneration, Nantong University, Nantong, 226001, China.
Department of Burn and Plastic Surgery, Affiliated Hospital of Nantong University, Medical School of Nantong University, Nantong, Jiangsu, 226000, China.
Bioact Mater. 2025 Jun 13;52:393-421. doi: 10.1016/j.bioactmat.2025.06.003. eCollection 2025 Oct.
Smart-responsive materials, which possess the capacity to receive signals from the environment and engage in dynamic communication with it, have significantly expanded the frontiers of tissue engineering and regenerative medicine. They hold substantial potential for the evolution of precise and distinctive therapeutic systems within the domain of neural regeneration. In the wake of the continuous advancement of science and technology, researchers have delved deeply into diverse response mechanisms and have successively developed multiple generations of smart responsive materials (SRM) for applications such as drug delivery, graft fabrication, and detection platforms in neural regeneration, yet a lack of a comprehensive and systematic review to provide informative references for researchers in the related fields. Therefore, in this review, we comprehensively summarize the response mechanisms and classifications of smart-responsive materials, with particular emphasis on the research and development progress and application modalities of various SRM in the field of neural regeneration, including peripheral nerve injury, spinal cord injury, and trauma brain injury. Additionally, the limitations of diverse smart-responsive materials in neural regeneration are meticulously dissected, and the efforts for developing new smart-responsive materials for neural regeneration was emphasized. Eventually, the prospects and forthcoming trends of smart-responsive materials in nerve regeneration are prominently spotlighted. It is anticipated that this review will furnish a crucial reference for the utilization of smart-responsive materials across various tissue engineering fields.
智能响应材料能够接收来自环境的信号并与之进行动态交互,极大地拓展了组织工程和再生医学的前沿领域。它们在神经再生领域的精确且独特的治疗系统发展中具有巨大潜力。随着科学技术的不断进步,研究人员深入研究了各种响应机制,并相继开发了多代智能响应材料(SRM),用于神经再生中的药物递送、移植物制造和检测平台等应用,但缺乏全面系统的综述为相关领域的研究人员提供信息参考。因此,在本综述中,我们全面总结了智能响应材料的响应机制和分类,特别强调了各种SRM在神经再生领域(包括周围神经损伤、脊髓损伤和创伤性脑损伤)的研发进展和应用方式。此外,还细致剖析了各种智能响应材料在神经再生中的局限性,并强调了开发用于神经再生的新型智能响应材料所做的努力。最后,突出了智能响应材料在神经再生中的前景和未来趋势。预计本综述将为各种组织工程领域中智能响应材料的应用提供关键参考。