Key Laboratory of Neuroregeneration, Co-innovation Center of Neuroregeneration, Nantong University, Nantong 226001, China.
Key Laboratory of Neuroregeneration, Co-innovation Center of Neuroregeneration, Nantong University, Nantong 226001, China; The People's Hospital of Rugao, Affiliated Hospital of Nantong University, 226599 Nantong, China.
Int J Biol Macromol. 2024 Jun;271(Pt 1):132394. doi: 10.1016/j.ijbiomac.2024.132394. Epub 2024 May 17.
The treatment of peripheral nerve injury is a clinical challenge that tremendously affected the patients' health and life. Anisotropic topographies and electric cues can simulate the regenerative microenvironment of nerve from physical and biological aspects, which show promising application in nerve regeneration. However, most studies just unilaterally emphasize the effect of sole topological- or electric- cue on nerve regeneration, while rarely considering the synergistic function of both cues simultaneously. In this study, a biomimetic-inspired piezoelectric topological ovalbumin/BaTiO scaffold that can provide non-invasive electrical stimulation in situ was constructed by combining piezoelectric BaTiO nanoparticles and surface microtopography. The results showed that the incorporation of piezoelectric nanoparticles could improve the mechanical properties of the scaffolds, and the piezoelectric output of the scaffolds after polarization was significantly increased. Biological evaluation revealed that the piezoelectric topological scaffolds could regulate the orientation growth of SCs, promote axon elongation of DRG, and upregulate the genes expression referring to myelination and axon growth, thus rapidly integrated chemical-mechanical signals and transmitted them for effectively promoting neuronal myelination, which was closely related to peripheral neurogenesis. The study suggests that the anisotropic surface topology combined with non-invasive electronic stimulation of the ovalbumin/BaTiO scaffolds possess a promising application prospect in the repair and regeneration of peripheral nerve injury.
周围神经损伤的治疗是一个临床挑战,极大地影响了患者的健康和生活。各向异性的拓扑结构和电刺激可以从物理和生物学方面模拟神经的再生微环境,在神经再生中显示出有前景的应用。然而,大多数研究只是单方面强调单一拓扑或电刺激对神经再生的影响,而很少同时考虑两者的协同作用。在这项研究中,通过结合压电 BaTiO3 纳米粒子和表面微形貌,构建了一种仿生启发的压电拓扑卵白蛋白/BaTiO3 支架,该支架可以提供原位非侵入性电刺激。结果表明,压电纳米粒子的掺入可以提高支架的机械性能,并且支架经极化后的压电输出显著增加。生物学评估表明,压电拓扑支架可以调节 SCs 的定向生长,促进 DRG 的轴突伸长,并上调与髓鞘形成和轴突生长相关的基因表达,从而快速整合化学-机械信号并传递它们,有效促进神经元髓鞘形成,这与周围神经发生密切相关。该研究表明,卵白蛋白/BaTiO3 支架的各向异性表面拓扑结构结合非侵入性电子刺激,在外周神经损伤的修复和再生中具有广阔的应用前景。