POCT In Vitro Diagnostics Group, R&D Solution Group, Samsung Advanced Institute of Technology (SAIT), San 14, Nongseo-dong, Giheung-gu, Yongin-si, Gyeonggi-do, Korea.
Small. 2013 Sep 23;9(18):3103-10. doi: 10.1002/smll.201202317. Epub 2013 Feb 7.
Circulating tumor cells (CTCs), though exceedingly rare in the blood, are nonetheless becoming increasingly important in cancer diagnostics. Despite this keen interest and the growing number of potential clinical applications, there has been limited success in developing a CTC isolation platform that simultaneously optimizes recovery rates, purity, and cell compatibility. Herein, a novel tracheal carina-inspired bifurcated (TRAB) microfilter system is reported, which uses an optimal filter gap size satisfying both 100% theoretical recovery rate and purity, as determined by biomechanical analysis and fluid-structure interaction (FSI) simulations. Biomechanical properties are also used to clearly discriminate between cancer cells and leukocytes, whereby cancer cells are selectively bound to melamine microbeads, which increase the size and stiffness of these cells. Nanoindentation experiments are conducted to measure the stiffness of leukocytes as compared to the microbead-conjugated cancer cells, with these parameters then being used in FSI analyses to optimize the filter gap size. The simulation results show that given a flow rate of 100 μL min(-1), an 8 μm filter gap optimizes the recovery rate and purity. MCF-7 breast cancer cells with solid microbeads are spiked into 3 mL of whole blood and, by using this flow rate along with the optimized microfilter dimensions, the cell mixture passes through the TRAB filter, which achieves a recovery rate of 93% and purity of 59%. Regarding cell compatibility, it is verified that the isolation procedure does not adversely affect cell viability, thus also confirming that the re-collected cancer cells can be cultured for up to 8 days. This work demonstrates a CTC isolation technology platform that optimizes high recovery rates and cell purity while also providing a framework for functional cell studies, potentially enabling even more sensitive and specific cancer diagnostics.
循环肿瘤细胞(CTCs)虽然在血液中极为罕见,但在癌症诊断中却变得越来越重要。尽管人们对此非常感兴趣,并且有越来越多的潜在临床应用,但在开发一种能够同时优化回收率、纯度和细胞相容性的 CTC 分离平台方面,一直收效甚微。在此,报告了一种新颖的气管隆嵴启发式分叉(TRAB)微滤系统,该系统使用满足 100%理论回收率和纯度的最佳滤隙尺寸,这是通过生物力学分析和流固耦合(FSI)模拟确定的。生物力学特性也可用于清楚地区分癌细胞和白细胞,其中癌细胞选择性地与三聚氰胺微珠结合,从而增加这些细胞的大小和刚性。进行纳米压痕实验以测量与微珠结合的癌细胞相比白细胞的刚性,然后将这些参数用于 FSI 分析以优化滤隙尺寸。模拟结果表明,在流速为 100 μL min(-1)时,8 μm 的滤隙优化了回收率和纯度。将带有固体微珠的 MCF-7 乳腺癌细胞注入 3 mL 全血中,并使用该流速和优化的微滤尺寸,细胞混合物通过 TRAB 滤器,回收率为 93%,纯度为 59%。关于细胞相容性,验证了分离过程不会对细胞活力产生不利影响,从而还确认可以对重新收集的癌细胞进行长达 8 天的培养。这项工作展示了一种 CTC 分离技术平台,该平台可优化高回收率和细胞纯度,同时还为功能细胞研究提供了框架,可能使癌症诊断更灵敏和更特异。