Hassanzadeh-Barforoushi Amin, Tukova Anastasiia, Nadalini Audrey, Inglis David W, Chang-Hao Tsao Simon, Wang Yuling
School of Natural Sciences, Faculty of Science and Engineering, Macquarie University, Sydney, New South Wales 2109, Australia.
School of Engineering, Faculty of Science and Engineering, Macquarie University, Sydney, New South Wales 2109, Australia.
ACS Appl Mater Interfaces. 2024 May 8;16(18):22761-22775. doi: 10.1021/acsami.4c01158. Epub 2024 Apr 23.
Enumeration and phenotypic profiling of circulating tumor cells (CTCs) provide critical information for clinical diagnosis and treatment monitoring in cancer. To achieve this goal, an integrated system is needed to efficiently isolate CTCs from patient samples and sensitively evaluate their phenotypes. Such integration would comprise a high-throughput single-cell processing unit for the isolation and manipulation of CTCs and a sensitive and multiplexed quantitation unit to detect clinically relevant signals from these cells. Surface-enhanced Raman scattering (SERS) has been used as an analytical method for molecular profiling and cancer diagnosis. More recently, its multiplexing capability and power to create distinct molecular signatures against their targets have garnered attention. Here, we share our insights into the combined power of microfluidics and SERS in realizing CTC isolation, enumeration, and detection from a clinical translation perspective. We highlight the key operational factors in CTC microfluidic processing and SERS detection from patient samples. We further discuss microfluidic-SERS integration and its clinical utility as a paradigm shift in clinical CTC-based cancer diagnosis and prognostication. Finally, we summarize the challenges and attempt to look forward to what lies ahead of us in potentially translating the technique into real clinical applications.
循环肿瘤细胞(CTC)的计数和表型分析为癌症的临床诊断和治疗监测提供了关键信息。为实现这一目标,需要一个集成系统来有效地从患者样本中分离CTC,并灵敏地评估其表型。这种集成将包括一个用于分离和操纵CTC的高通量单细胞处理单元,以及一个用于检测来自这些细胞的临床相关信号的灵敏且多重定量单元。表面增强拉曼散射(SERS)已被用作分子分析和癌症诊断的一种分析方法。最近,其多重检测能力以及针对目标产生独特分子特征的能力受到了关注。在此,我们从临床转化的角度分享我们对微流控技术和SERS在实现CTC分离、计数及检测方面的联合优势的见解。我们强调了从患者样本中进行CTC微流控处理和SERS检测的关键操作因素。我们进一步讨论微流控-SERS集成及其作为基于临床CTC的癌症诊断和预后的范式转变的临床应用价值。最后,我们总结了挑战,并尝试展望在将该技术转化为实际临床应用方面摆在我们面前的未来发展。