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压电材料作为刺激生物医学材料和骨修复支架。

Piezoelectric materials as stimulatory biomedical materials and scaffolds for bone repair.

机构信息

School of Materials, MSS Tower, The University of Manchester, Manchester M13 9PL, UK; Bio-Active Materials Group, School of Materials, MSS Tower, The University of Manchester, Manchester M13 9PL, UK.

Bio-Active Materials Group, School of Materials, MSS Tower, The University of Manchester, Manchester M13 9PL, UK.

出版信息

Acta Biomater. 2018 Jun;73:1-20. doi: 10.1016/j.actbio.2018.04.026. Epub 2018 Apr 16.

Abstract

UNLABELLED

The process of bone repair and regeneration requires multiple physiological cues including biochemical, electrical and mechanical - that act together to ensure functional recovery. Myriad materials have been explored as bioactive scaffolds to deliver these cues locally to the damage site, amongst these piezoelectric materials have demonstrated significant potential for tissue engineering and regeneration, especially for bone repair. Piezoelectric materials have been widely explored for power generation and harvesting, structural health monitoring, and use in biomedical devices. They have the ability to deform with physiological movements and consequently deliver electrical stimulation to cells or damaged tissue without the need of an external power source. Bone itself is piezoelectric and the charges/potentials it generates in response to mechanical activity are capable of enhancing bone growth. Piezoelectric materials are capable of stimulating the physiological electrical microenvironment, and can play a vital role to stimulate regeneration and repair. This review gives an overview of the association of piezoelectric effect with bone repair, and focuses on state-of-the-art piezoelectric materials (polymers, ceramics and their composites), the fabrication routes to produce piezoelectric scaffolds, and their application in bone repair. Important characteristics of these materials from the perspective of bone tissue engineering are highlighted. Promising upcoming strategies and new piezoelectric materials for this application are presented.

STATEMENT OF SIGNIFICANCE

Electrical stimulation/electrical microenvironment are known effect the process of bone regeneration by altering the cellular response and are crucial in maintaining tissue functionality. Piezoelectric materials, owing to their capability of generating charges/potentials in response to mechanical deformations, have displayed great potential for fabricating smart stimulatory scaffolds for bone tissue engineering. The growing interest of the scientific community and compelling results of the published research articles has been the motivation of this review article. This article summarizes the significant progress in the field with a focus on the fabrication aspects of piezoelectric materials. The review of both material and cellular aspects on this topic ensures that this paper appeals to both material scientists and tissue engineers.

摘要

未加标签

骨修复和再生的过程需要多种生理信号,包括生化、电气和机械信号,这些信号共同作用以确保功能恢复。人们已经探索了无数材料作为生物活性支架,将这些信号局部递送到损伤部位,其中压电材料在组织工程和再生方面表现出了巨大的潜力,尤其是在骨修复方面。压电材料已广泛用于发电和能量收集、结构健康监测以及用于生物医学设备。它们能够随着生理运动而变形,从而无需外部电源即可向细胞或受损组织提供电刺激。骨骼本身就是压电的,它在响应机械活动时产生的电荷/电势能够增强骨骼生长。压电材料能够刺激生理电微环境,对于刺激再生和修复起着至关重要的作用。本综述概述了压电效应与骨修复的关联,重点介绍了最新的压电材料(聚合物、陶瓷及其复合材料)、制造产生压电支架的途径及其在骨修复中的应用。从骨组织工程的角度强调了这些材料的重要特性。提出了针对该应用的有前途的新兴策略和新的压电材料。

意义陈述

电刺激/电微环境已知通过改变细胞反应来影响骨再生过程,对于维持组织功能至关重要。压电材料由于能够响应机械变形产生电荷/电势,因此在制造用于骨组织工程的智能刺激支架方面显示出巨大的潜力。科学界的兴趣日益浓厚,以及已发表研究文章的令人信服的结果,是撰写这篇综述文章的动力。本文总结了该领域的重大进展,重点介绍了压电材料的制造方面。关于这个主题的材料和细胞方面的综述确保了本文既吸引材料科学家又吸引组织工程师。

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