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采用透明铌酸锂换能器的声流聚焦和稀有肿瘤细胞分离。

The acoustofluidic focusing and separation of rare tumor cells using transparent lithium niobate transducers.

机构信息

Key Laboratory of Artificial Micro- and Nano-structures of Ministry of Education, School of Physics and Technology, Wuhan University, Wuhan 430072, P. R. China.

Department of Hematology, Zhongnan Hospital of Wuhan University, Wuhan, Hubei 430072, P. R. China.

出版信息

Lab Chip. 2019 Dec 7;19(23):3922-3930. doi: 10.1039/c9lc00874h. Epub 2019 Nov 6.

Abstract

Research on circulating tumor cells (CTCs) is of great significance in cancer diagnosis, prognosis and even the development of personalized therapy. Here, we present a simple and transparent acoustofluidic device for CTC separation in a label-free and non-invasive manner, instead of traditional acoustic devices based on silicon substrates, which are not only expensive, but also not conducive to optical visualization. The device is based on cheaper glass fabrication and integrated with a 36°Y-rotated cut lithium niobate single crystal (36° LNO) coated indium tin oxide (ITO) acoustic actuator instead of piezoceramics. It could greatly reduce the generation of heat when the signal is excited by utilizing the thickness vibration mode of the 36° LNO single crystal material because of its super-linear performance. Moreover, pre-aligning the particles in the sample inlet in a two-dimensional (2D) mode served to improve the separation efficiency of the device. It was proved that the separation efficiency of polystyrene particles was 97.1 ± 1.0%. The average separation efficiency of cancer cell lines (MCF7 and HeLa) mixed with white bloods cells was about 91.5 ± 4.5%. Owing to the excellent light transmittance of this acoustofluidic device, it has great potential for application to related optical techniques for cell detection while simultaneously separating cells relying on an acoustic field.

摘要

循环肿瘤细胞(CTC)的研究在癌症诊断、预后甚至个性化治疗的发展方面具有重要意义。在这里,我们提出了一种简单透明的无标记、非侵入式的基于声流控的 CTC 分离装置,而不是传统的基于硅基底的声学装置,这种装置不仅昂贵,而且不利于光学可视化。该装置基于更便宜的玻璃制造工艺,并集成了 36°Y 切铌酸锂单晶(36°LNO)覆盖氧化铟锡(ITO)声驱动器,而不是压电陶瓷。由于其超线性性能,利用 36°LNO 单晶材料的厚度振动模式,可以在激发信号时大大减少热量的产生。此外,通过在二维(2D)模式下对样品入口处的颗粒进行预对准,可以提高器件的分离效率。实验证明,聚苯乙烯颗粒的分离效率为 97.1±1.0%。混合有白细胞的癌细胞系(MCF7 和 HeLa)的平均分离效率约为 91.5±4.5%。由于该声流控装置具有优异的透光率,因此它在依靠声场分离细胞的同时,也非常适合与相关光学技术结合用于细胞检测。

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