Piezoelectric biomaterials for neural tissue engineering.

Smart medicine Pub Date : 2023-04-26 eCollection Date: 2023-05-01 DOI:10.1002/SMMD.20230002
Dongyu Xu, Hui Zhang, Yu Wang, Yuan Zhang, Fanglei Ye, Ling Lu, Renjie Chai
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Abstract

Nerve injury caused by trauma or iatrogenic trauma can lead to loss of sensory and motor function, resulting in paralysis of patients. Inspired by endogenous bioelectricity and extracellular matrix, various external physical and chemical stimuli have been introduced to treat nerve injury. Benefiting from the self-power feature and great biocompatibility, piezoelectric biomaterials have attracted widespread attention in biomedical applications, especially in neural tissue engineering. Here, we provide an overview of the development of piezoelectric biomaterials for neural tissue engineering. First, several types of piezoelectric biomaterials are introduced, including inorganic piezoelectric nanomaterials, organic piezoelectric polymers, and their derivates. Then, we focus on the in vitro and in vivo external energy-driven piezoelectric effects involving ultrasound, mechanical movement, and other external field-driven piezoelectric effects. Neuroengineering applications of the piezoelectric biomaterials as in vivo grafts for the treatment of central nerve injury and peripheral nerve injury are also discussed and highlighted. Finally, the current challenges and future development of piezoelectric biomaterials for promoting nerve regeneration and treating neurological diseases are presented.

神经组织工程用压电生物材料
外伤或医源性外伤引起的神经损伤可导致感觉和运动功能丧失,导致患者瘫痪。在内源性生物电和细胞外基质的启发下,各种外部物理和化学刺激被引入治疗神经损伤。压电生物材料由于具有自功率特性和良好的生物相容性,在生物医学尤其是神经组织工程方面的应用受到了广泛的关注。本文就神经组织工程中压电生物材料的研究进展作一综述。首先,介绍了几种类型的压电生物材料,包括无机压电纳米材料、有机压电聚合物及其衍生物。然后,我们重点研究了体外和体内外部能量驱动的压电效应,包括超声、机械运动和其他外场驱动的压电效应。讨论并强调了压电生物材料作为活体移植物在中枢神经损伤和周围神经损伤治疗中的神经工程应用。最后,介绍了压电生物材料在促进神经再生和治疗神经系统疾病方面面临的挑战和未来的发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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