Department of Material Engineering, Indian Institute of Science, Bangalore, 560012, Karnataka, India.
Department of Material Engineering, Indian Institute of Science, Bangalore, 560012, Karnataka, India.
Biomaterials. 2024 Jun;307:122528. doi: 10.1016/j.biomaterials.2024.122528. Epub 2024 Mar 11.
Piezoelectric biomaterials have demonstrated significant potential in the past few decades to heal damaged tissue and restore cellular functionalities. Herein, we discuss the role of bioelectricity in tissue remodeling and explore ways to mimic such tissue-like properties in synthetic biomaterials. In the past decade, biomedical engineers have adopted emerging functional biomaterials-based tissue engineering approaches using innovative bioelectronic stimulation protocols based on dynamic stimuli to direct cellular activation, proliferation, and differentiation on engineered biomaterial constructs. The primary focus of this review is to discuss the concepts of piezoelectric energy harvesting, piezoelectric materials, and their application in soft (skin and neural) and hard (dental and bone) tissue regeneration. While discussing the prospective applications as an engineered tissue, an important distinction has been made between piezoceramics, piezopolymers, and their composites. The superiority of piezopolymers over piezoceramics to circumvent issues such as stiffness mismatch, biocompatibility, and biodegradability are highlighted. We aim to provide a comprehensive review of the field and identify opportunities for the future to develop clinically relevant and state-of-the-art biomaterials for personalized and remote health care.
压电生物材料在过去几十年中表现出了巨大的潜力,可以修复受损组织并恢复细胞功能。本文讨论了生物电在组织重塑中的作用,并探讨了在合成生物材料中模拟这种类似组织特性的方法。在过去的十年中,生物医学工程师采用了新兴的基于功能生物材料的组织工程方法,使用基于动态刺激的创新生物电子刺激方案来指导工程生物材料构建体上的细胞激活、增殖和分化。本综述的主要重点是讨论压电能量收集、压电材料的概念及其在软(皮肤和神经)和硬(牙齿和骨骼)组织再生中的应用。在讨论作为工程组织的潜在应用时,已经对压电陶瓷、压电聚合物及其复合材料进行了重要区分。强调了压电聚合物相对于压电陶瓷的优势,以解决诸如刚度不匹配、生物相容性和可生物降解性等问题。我们旨在提供该领域的全面综述,并确定未来的机会,以开发用于个性化和远程医疗的临床相关和最先进的生物材料。