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生物电子学用于电刺激:材料、器件和生物医学应用。

Bioelectronics for electrical stimulation: materials, devices and biomedical applications.

机构信息

Department of Biomedical Engineering, City University of Hong Kong, Hong Kong, China.

Department of Electronic and Computer Engineering, The Hong Kong University of Science and Technology, Hong Kong, China.

出版信息

Chem Soc Rev. 2024 Aug 27;53(17):8632-8712. doi: 10.1039/d4cs00413b.


DOI:10.1039/d4cs00413b
PMID:39132912
Abstract

Bioelectronics is a hot research topic, yet an important tool, as it facilitates the creation of advanced medical devices that interact with biological systems to effectively diagnose, monitor and treat a broad spectrum of health conditions. Electrical stimulation (ES) is a pivotal technique in bioelectronics, offering a precise, non-pharmacological means to modulate and control biological processes across molecular, cellular, tissue, and organ levels. This method holds the potential to restore or enhance physiological functions compromised by diseases or injuries by integrating sophisticated electrical signals, device interfaces, and designs tailored to specific biological mechanisms. This review explains the mechanisms by which ES influences cellular behaviors, introduces the essential stimulation principles, discusses the performance requirements for optimal ES systems, and highlights the representative applications. From this review, we can realize the potential of ES based bioelectronics in therapy, regenerative medicine and rehabilitation engineering technologies, ranging from tissue engineering to neurological technologies, and the modulation of cardiovascular and cognitive functions. This review underscores the versatility of ES in various biomedical contexts and emphasizes the need to adapt to complex biological and clinical landscapes it addresses.

摘要

生物电子学是一个热门的研究课题,同时也是一个重要的工具,因为它促进了先进的医疗设备的创建,这些设备与生物系统相互作用,有效地诊断、监测和治疗广泛的健康状况。电刺激(ES)是生物电子学的一项关键技术,它提供了一种精确的、非药物的方法来调节和控制分子、细胞、组织和器官水平的生物过程。这种方法有可能通过整合复杂的电信号、设备接口和针对特定生物机制的设计来恢复或增强因疾病或损伤而受损的生理功能。这篇综述解释了 ES 影响细胞行为的机制,介绍了基本的刺激原理,讨论了优化 ES 系统的性能要求,并强调了代表性的应用。通过这篇综述,我们可以认识到基于 ES 的生物电子学在治疗、再生医学和康复工程技术中的潜力,涵盖了从组织工程到神经技术以及心血管和认知功能的调节。这篇综述强调了 ES 在各种生物医学环境中的多功能性,并强调了需要适应它所解决的复杂的生物和临床环境。

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