Berry-Kilgour C, Wise L, King J, Oey I
Department of Pharmacology and Toxicology, School of Biomedical Sciences, University of Otago, Dunedin, New Zealand.
Department of Food Sciences, University of Otago, Dunedin, New Zealand.
Front Bioeng Biotechnol. 2024 Apr 16;12:1386725. doi: 10.3389/fbioe.2024.1386725. eCollection 2024.
Tissue engineering encompasses a range of techniques that direct the growth of cells into a living tissue construct for regenerative medicine applications, disease models, drug discovery, and safety testing. These techniques have been implemented to alleviate the clinical burdens of impaired healing of skin, bone, and other tissues. Construct development requires the integration of tissue-specific cells and/or an extracellular matrix-mimicking biomaterial for structural support. Production of such constructs is generally expensive and environmentally costly, thus eco-sustainable approaches should be explored. Pulsed electric field (PEF) technology is a nonthermal physical processing method commonly used in food production and biomedical applications. In this review, the key principles of PEF and the application of PEF technology for skin engineering will be discussed, with an emphasis on how PEF can be applied to skin cells to modify their behaviour, and to biomaterials to assist in their isolation or sterilisation, or to modify their physical properties. The findings indicate that the success of PEF in tissue engineering will be reliant on systematic evaluation of key parameters, such as electric field strength, and their impact on different skin cell and biomaterial types. Linking tangible input parameters to biological responses critical to healing will assist with the development of PEF as a sustainable tool for skin repair and other tissue engineering applications.
组织工程涵盖一系列技术,这些技术将细胞生长引导至用于再生医学应用、疾病模型、药物发现和安全性测试的活体组织构建物中。这些技术已被用于减轻皮肤、骨骼和其他组织愈合受损带来的临床负担。构建物的开发需要整合组织特异性细胞和/或用于结构支撑的模拟细胞外基质的生物材料。此类构建物的生产通常成本高昂且对环境代价较大,因此应探索生态可持续的方法。脉冲电场(PEF)技术是一种常用于食品生产和生物医学应用的非热物理处理方法。在本综述中,将讨论PEF的关键原理以及PEF技术在皮肤工程中的应用,重点在于PEF如何应用于皮肤细胞以改变其行为,以及应用于生物材料以协助其分离或灭菌,或改变其物理性质。研究结果表明,PEF在组织工程中的成功将依赖于对关键参数(如电场强度)及其对不同皮肤细胞和生物材料类型的影响进行系统评估。将切实的输入参数与对愈合至关重要的生物学反应联系起来,将有助于把PEF开发成一种用于皮肤修复和其他组织工程应用的可持续工具。