School of Mechanical Engineering, Dalian University of Technology, Dalian, Liaoning, P. R. China.
School of Biomedical Engineering, Faculty of Medicine, Dalian University of Technology, Dalian, Liaoning, P. R. China.
Electrophoresis. 2024 Jul;45(13-14):1212-1232. doi: 10.1002/elps.202300177. Epub 2023 Nov 1.
Single-cell biophysical properties play a crucial role in regulating cellular physiological states and functions, demonstrating significant potential in the fields of life sciences and clinical diagnostics. Therefore, over the last few decades, researchers have developed various detection tools to explore the relationship between the biophysical changes of biological cells and human diseases. With the rapid advancement of modern microfabrication technology, microfluidic devices have quickly emerged as a promising platform for single-cell analysis offering advantages including high-throughput, exceptional precision, and ease of manipulation. Consequently, this paper provides an overview of the recent advances in microfluidic analysis and detection systems for single-cell biophysical properties and their applications in the field of cancer. The working principles and latest research progress of single-cell biophysical property detection are first analyzed, highlighting the significance of electrical and mechanical properties. The development of data acquisition and processing methods for real-time, high-throughput, and practical applications are then discussed. Furthermore, the differences in biophysical properties between tumor and normal cells are outlined, illustrating the potential for utilizing single-cell biophysical properties for tumor cell identification, classification, and drug response assessment. Lastly, we summarize the limitations of existing microfluidic analysis and detection systems in single-cell biophysical properties, while also pointing out the prospects and future directions of their applications in cancer diagnosis and treatment.
单细胞生物物理特性在调节细胞生理状态和功能方面发挥着关键作用,在生命科学和临床诊断领域具有重要的应用潜力。因此,在过去几十年中,研究人员开发了各种检测工具来探索生物细胞的生物物理变化与人类疾病之间的关系。随着现代微制造技术的飞速发展,微流控设备迅速成为单细胞分析的有前途的平台,具有高通量、高精度和易于操作等优点。因此,本文概述了微流控分析和单细胞生物物理特性检测系统的最新进展及其在癌症领域的应用。首先分析了单细胞生物物理特性检测的工作原理和最新研究进展,强调了电学和力学特性的重要性。然后讨论了用于实时、高通量和实际应用的数据采集和处理方法的发展。此外,还概述了肿瘤细胞和正常细胞之间生物物理特性的差异,说明了利用单细胞生物物理特性进行肿瘤细胞识别、分类和药物反应评估的潜力。最后,总结了现有微流控分析和单细胞生物物理特性检测系统的局限性,同时指出了它们在癌症诊断和治疗中的应用前景和未来方向。