Xia Guangbo, Song Beibei, Fang Jian
College of Textile and Clothing Engineering, Soochow University, Suzhou 215123, China.
National Engineering Laboratory for Modern Silk, Soochow University, Suzhou 215123, China.
Research (Wash D C). 2022 Aug 2;2022:9896274. doi: 10.34133/2022/9896274. eCollection 2022.
Electrical stimulation has demonstrated great effectiveness in the modulation of cell fate and regeneration therapy . Conventionally, the employment of electrical signal comes with the electrodes, battery, and connectors in an invasive fashion. This tedious procedure and possible infection hinder the translation of electrical stimulation technologies in regenerative therapy. Given electromechanical coupling and flexibility, piezoelectric polymers can overcome these limitations as they can serve as a self-powered stimulator via scavenging mechanical force from the organism and external stimuli wirelessly. Wireless electrical cue mediated by electrospun piezoelectric polymeric nanofibers constitutes a promising paradigm allowing the generation of localized electrical stimulation both in a noninvasive manner and at cell level. Recently, numerous studies based on electrospun piezoelectric nanofibers have been carried out in electrically regenerative therapy. In this review, brief introduction of piezoelectric polymer and electrospinning technology is elucidated first. Afterward, we highlight the activating strategies (e.g., cell traction, physiological activity, and ultrasound) of piezoelectric stimulation and the interaction of piezoelectric cue with nonelectrically/electrically excitable cells in regeneration medicine. Then, quantitative comparison of the electrical stimulation effects using various activating strategies on specific cell behavior and various cell types is outlined. Followingly, this review explores the present challenges in electrospun nanofiber-based piezoelectric stimulation for regeneration therapy and summarizes the methodologies which may be contributed to future efforts in this field for the reality of this technology in the clinical scene. In the end, a summary of this review and future perspectives toward electrospun nanofiber-based piezoelectric stimulation in tissue regeneration are elucidated.
电刺激在细胞命运调控和再生治疗中已显示出巨大的有效性。传统上,电信号的应用需要通过电极、电池和连接器以侵入性方式进行。这种繁琐的过程和可能的感染阻碍了电刺激技术在再生治疗中的转化。鉴于机电耦合和灵活性,压电聚合物可以克服这些限制,因为它们可以通过从生物体和外部刺激中无线 scavenging 机械力来作为自供电刺激器。由电纺压电聚合物纳米纤维介导的无线电信号构成了一种有前景的范例,允许以非侵入性方式在细胞水平上产生局部电刺激。最近,基于电纺压电纳米纤维的众多研究已在电再生治疗中开展。在本综述中,首先阐明了压电聚合物和电纺技术的简要介绍。随后,我们强调了压电刺激的激活策略(如细胞牵引、生理活动和超声)以及压电信号与再生医学中不可电/可电兴奋细胞的相互作用。然后,概述了使用各种激活策略对特定细胞行为和各种细胞类型的电刺激效果的定量比较。接下来,本综述探讨了基于电纺纳米纤维的压电刺激在再生治疗中的当前挑战,并总结了可能有助于该领域未来努力以实现该技术在临床场景中的方法。最后,阐明了本综述的总结以及对基于电纺纳米纤维的压电刺激在组织再生中的未来展望。