Tai Youyi, Tonmoy Thamidul Islam, Win Shwe, Brinkley Natasha T, Park B Hyle, Nam Jin
Department of Bioengineering, University of California, Riverside, CA, 92521, USA.
NPJ Regen Med. 2023 Oct 17;8(1):57. doi: 10.1038/s41536-023-00334-y.
To address limitations in current approaches for treating large peripheral nerve defects, the presented study evaluated the feasibility of functional material-mediated physical stimuli on peripheral nerve regeneration. Electrospun piezoelectric poly(vinylidene fluoride-trifluoroethylene) nanofibers were utilized to deliver mechanical actuation-activated electrical stimulation to nerve cells/tissues in a non-invasive manner. Using morphologically and piezoelectrically optimized nanofibers for neurite extension and Schwann cell maturation based on in vitro experiments, piezoelectric nerve conduits were synthesized and implanted in a rat sciatic nerve transection model to bridge a critical-sized sciatic nerve defect (15 mm). A therapeutic shockwave system was utilized to periodically activate the piezoelectric effect of the implanted nerve conduit on demand. The piezoelectric nerve conduit-mediated mechano-electrical stimulation (MES) induced enhanced peripheral nerve regeneration, resulting in full axon reconnection with myelin regeneration from the proximal to the distal ends over the critical-sized nerve gap. In comparison, a control group, in which the implanted piezoelectric conduits were not activated in vivo, failed to exhibit such nerve regeneration. In addition, at both proximal and distal ends of the implanted conduits, a decreased number of damaged myelination (ovoids), an increased number of myelinated nerves, and a larger axonal diameter were observed under the MES condition as compared to the control condition. Furthermore, unlike the control group, the MES condition exhibited a superior functional nerve recovery, assessed by walking track analysis and polarization-sensitive optical coherence tomography, demonstrating the significant potential of the piezoelectric conduit-based physical stimulation approach for the treatment of peripheral nerve injury.
为解决当前治疗大型周围神经缺损方法的局限性,本研究评估了功能材料介导的物理刺激对周围神经再生的可行性。采用静电纺丝法制备的聚偏二氟乙烯-三氟乙烯压电纳米纤维,以非侵入性方式向神经细胞/组织传递机械驱动激活的电刺激。基于体外实验,使用形态和压电性能优化的纳米纤维促进神经突生长和雪旺细胞成熟,合成了压电神经导管,并将其植入大鼠坐骨神经横断模型中,以桥接临界尺寸的坐骨神经缺损(15毫米)。利用治疗性冲击波系统根据需要定期激活植入神经导管的压电效应。压电神经导管介导的机电刺激(MES)促进了周围神经再生增强,在临界尺寸的神经间隙上实现了从近端到远端的完全轴突重新连接和髓鞘再生。相比之下,体内未激活植入压电导管的对照组未表现出这种神经再生。此外,与对照条件相比,在MES条件下,在植入导管的近端和远端,观察到受损髓鞘(卵圆体)数量减少、有髓神经数量增加以及轴突直径增大。此外,与对照组不同,通过行走轨迹分析和偏振敏感光学相干断层扫描评估,MES条件下显示出更好的功能性神经恢复,证明了基于压电导管的物理刺激方法在治疗周围神经损伤方面具有巨大潜力。