Co-innovation Center of Neuroregeneration, Key Laboratory of Neuroregeneration of Jiangsu and Ministry of Education, Nantong University, 226001, Nantong, P. R. China.
The People's Hospital of Rugao, Affiliated Hospital of Nantong University, 226599, Nantong, P. R. China.
Biomater Sci. 2023 Nov 7;11(22):7296-7310. doi: 10.1039/d3bm01111a.
The purpose of nerve regeneration tissue engineering strategies is to create a microenvironment that mimics natural nerve growth for achieving functional recovery. Biomaterial scaffolds offer a promising option for the clinical treatment of large nerve gaps due to the rapid advancement of materials science and regenerative medicine. The design of biomimetic scaffolds should take into account the inherent properties of the nerve and its growth environment, such as stiffness, topography, adhesion, conductivity, and chemical functionality. Various advanced techniques have been employed to develop suitable scaffolds for nerve repair. Since neuronal cells have electrical activity, the transmission of bioelectrical signals is crucial for the functional recovery of nerves. Therefore, an ideal peripheral nerve scaffold should have electrical activity properties similar to those of natural nerves, in addition to a delicate structure. Piezoelectric materials can convert stress changes into electrical signals that can activate different intracellular signaling pathways critical for cell activity and function, which makes them potentially useful for nerve tissue regeneration. However, a comprehensive review of piezoelectric materials for neuroregeneration is still lacking. Thus, this review systematically summarizes the development of piezoelectric materials and their application in the field of nerve regeneration. First, the electrical signals and natural piezoelectricity phenomenon in various organisms are briefly introduced. Second, the most commonly used piezoelectric materials in neural tissue engineering, including biocompatible piezoelectric polymers, inorganic piezoelectric materials, and natural piezoelectric materials, are classified and discussed. Finally, the challenges and future research directions of piezoelectric materials for application in nerve regeneration are proposed.
神经再生组织工程策略的目的是创造一个模仿自然神经生长的微环境,以实现功能恢复。生物材料支架为临床治疗大的神经间隙提供了有希望的选择,这是由于材料科学和再生医学的快速发展。仿生支架的设计应考虑神经及其生长环境的固有特性,如硬度、形貌、附着力、导电性和化学功能。已经采用了各种先进技术来开发适合神经修复的支架。由于神经元细胞具有电活性,生物电信号的传递对于神经的功能恢复至关重要。因此,理想的周围神经支架除了具有精细的结构外,还应具有类似于天然神经的电活性特性。压电材料可以将应力变化转化为电信号,从而激活细胞活动和功能所必需的不同细胞内信号通路,这使得它们在神经组织再生中具有潜在的应用价值。然而,对于用于神经再生的压电材料的全面综述仍然缺乏。因此,本综述系统地总结了压电材料的发展及其在神经再生领域的应用。首先,简要介绍了各种生物体中的电信号和天然压电现象。其次,对神经组织工程中最常用的压电材料进行了分类和讨论,包括生物相容性压电聚合物、无机压电材料和天然压电材料。最后,提出了压电材料在神经再生应用中的挑战和未来研究方向。