Key Laboratory of Biorheological Science and Technology, Ministry of Education, College of Bioengineering, Chongqing University, Chongqing, 400044, China.
Chongqing Key Laboratory of Oral Diseases and Biomedical Sciences, Chongqing Municipal Key Laboratory of Oral Biomedical Engineering of Higher Education, Stomatological Hospital of Chongqing Medical University, Chongqing, 401147, China.
Adv Mater. 2024 Aug;36(35):e2406192. doi: 10.1002/adma.202406192. Epub 2024 Jul 14.
Bioelectricity provides electrostimulation to regulate cell/tissue behaviors and functions. In the human body, bioelectricity can be generated in electromechanically responsive tissues and organs, as well as biomolecular building blocks that exhibit piezoelectricity, with a phenomenon known as the piezoelectric effect. Inspired by natural bio-piezoelectric phenomenon, efforts have been devoted to exploiting high-performance synthetic piezoelectric biomaterials, including molecular materials, polymeric materials, ceramic materials, and composite materials. Notably, piezoelectric biomaterials polarize under mechanical strain and generate electrical potentials, which can be used to fabricate electronic devices. Herein, a review article is proposed to summarize the design and research progress of piezoelectric biomaterials and devices toward bionanotechnology. First, the functions of bioelectricity in regulating human electrophysiological activity from cellular to tissue level are introduced. Next, recent advances as well as structure-property relationship of various natural and synthetic piezoelectric biomaterials are provided in detail. In the following part, the applications of piezoelectric biomaterials in tissue engineering, drug delivery, biosensing, energy harvesting, and catalysis are systematically classified and discussed. Finally, the challenges and future prospects of piezoelectric biomaterials are presented. It is believed that this review will provide inspiration for the design and development of innovative piezoelectric biomaterials in the fields of biomedicine and nanotechnology.
生物电能提供电刺激以调节细胞/组织的行为和功能。在人体中,电能可以在机电响应组织和器官中产生,以及表现出压电性的生物分子构建块中产生,这种现象称为压电效应。受自然生物压电现象的启发,人们致力于开发高性能的合成压电生物材料,包括分子材料、聚合物材料、陶瓷材料和复合材料。值得注意的是,压电生物材料在机械应变下会极化并产生电势,可用于制造电子设备。本文提出了一篇综述文章,总结了压电生物材料和器件在生物纳米技术方面的设计和研究进展。首先,介绍了生物电能在从细胞水平到组织水平调节人体电生理活动中的作用。接下来,详细介绍了各种天然和合成压电生物材料的最新进展以及它们的结构-性能关系。在接下来的部分中,系统地分类和讨论了压电生物材料在组织工程、药物输送、生物传感、能量收集和催化等方面的应用。最后,提出了压电生物材料面临的挑战和未来展望。相信这篇综述将为生物医学和纳米技术领域创新型压电生物材料的设计和开发提供启示。