From electricity to vitality: the emerging use of piezoelectric materials in tissue regeneration.

IF 6.3 1区 医学 Q1 DERMATOLOGY Burns & Trauma Pub Date : 2024-07-02 eCollection Date: 2024-01-01 DOI:10.1093/burnst/tkae013
Yifan Wu, Junwu Zou, Kai Tang, Ying Xia, Xixi Wang, Lili Song, Jinhai Wang, Kai Wang, Zhihong Wang
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Abstract

The unique ability of piezoelectric materials to generate electricity spontaneously has attracted widespread interest in the medical field. In addition to the ability to convert mechanical stress into electrical energy, piezoelectric materials offer the advantages of high sensitivity, stability, accuracy and low power consumption. Because of these characteristics, they are widely applied in devices such as sensors, controllers and actuators. However, piezoelectric materials also show great potential for the medical manufacturing of artificial organs and for tissue regeneration and repair applications. For example, the use of piezoelectric materials in cochlear implants, cardiac pacemakers and other equipment may help to restore body function. Moreover, recent studies have shown that electrical signals play key roles in promoting tissue regeneration. In this context, the application of electrical signals generated by piezoelectric materials in processes such as bone healing, nerve regeneration and skin repair has become a prospective strategy. By mimicking the natural bioelectrical environment, piezoelectric materials can stimulate cell proliferation, differentiation and connection, thereby accelerating the process of self-repair in the body. However, many challenges remain to be overcome before these concepts can be applied in clinical practice, including material selection, biocompatibility and equipment design. On the basis of the principle of electrical signal regulation, this article reviews the definition, mechanism of action, classification, preparation and current biomedical applications of piezoelectric materials and discusses opportunities and challenges for their future clinical translation.

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从电力到活力:压电材料在组织再生中的新兴应用。
压电材料自发产生电能的独特能力引起了医疗领域的广泛兴趣。除了能将机械应力转化为电能外,压电材料还具有高灵敏度、高稳定性、高精度和低功耗等优点。正因为这些特点,它们被广泛应用于传感器、控制器和致动器等设备中。不过,压电材料在人工器官的医疗制造以及组织再生和修复应用方面也显示出巨大的潜力。例如,在人工耳蜗、心脏起搏器和其他设备中使用压电材料可能有助于恢复人体功能。此外,最近的研究表明,电信号在促进组织再生方面发挥着关键作用。在这种情况下,将压电材料产生的电信号应用于骨骼愈合、神经再生和皮肤修复等过程已成为一种前瞻性策略。通过模拟自然生物电环境,压电材料可以刺激细胞增殖、分化和连接,从而加速人体的自我修复过程。然而,在将这些概念应用于临床实践之前,仍有许多挑战需要克服,包括材料选择、生物相容性和设备设计。本文以电信号调节原理为基础,回顾了压电材料的定义、作用机制、分类、制备和当前的生物医学应用,并探讨了其未来临床应用的机遇和挑战。
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来源期刊
Burns & Trauma
Burns & Trauma 医学-皮肤病学
CiteScore
8.40
自引率
9.40%
发文量
186
审稿时长
6 weeks
期刊介绍: The first open access journal in the field of burns and trauma injury in the Asia-Pacific region, Burns & Trauma publishes the latest developments in basic, clinical and translational research in the field. With a special focus on prevention, clinical treatment and basic research, the journal welcomes submissions in various aspects of biomaterials, tissue engineering, stem cells, critical care, immunobiology, skin transplantation, and the prevention and regeneration of burns and trauma injuries. With an expert Editorial Board and a team of dedicated scientific editors, the journal enjoys a large readership and is supported by Southwest Hospital, which covers authors'' article processing charges.
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