Korea Institute of Machinery and Materials, Daegu Research Center for Medical Devices and Rehab. Engineering, Department of Medical Device, 330 Techno Sunhwan-ro, Yuga-myeon, Dalsung-gun, Daegu, 42994 Republic of Korea.
Korea Institute of Machinery and Materials, Daegu Research Center for Medical Devices and Rehab. Engineering, Department of Medical Device, 330 Techno Sunhwan-ro, Yuga-myeon, Dalsung-gun, Daegu, 42994 Republic of Korea; Kyungpook National University, College of IT Engineering, School of Electronics Engineering, 80 Daehak-ro, Buk-gu, Daegu, 41566 Republic of Korea.
Biosens Bioelectron. 2017 Feb 15;88:153-158. doi: 10.1016/j.bios.2016.08.002. Epub 2016 Aug 2.
Relocation mechanisms of the circulating tumor cells (CTCs) from the primary site to the secondary site through the blood vessel network cause tumor metastasis. Despite of the importance to diagnose the cancer metastasis by CTCs, still it is formidable challenge to use in the clinical purpose because of the rarity and the heterogeneity of CTCs in the cancer patient's peripheral blood sample. In this study we have developed magnetic force gradient based microfluidic chip (Mag-Gradient Chip) for isolating the total number of CTCs in the sample and characterizing the state of CTCs simultaneously with respect to the epithelial cell adhesion molecule (EpCAM) expression level. We have synthesized magnetic nanoparticles (MNPs) using hydrothermal method and functionalized anti-EpCAM on their surface for the specific binding with CTCs. The Mag-Gradient Chip designed to isolate and classify the CTCs by isolating at the different location in the chip using magnetic force differences depending on the EpCAM expression level. We observed 95.7% of EpCAM positive and 79.3% of EpCAM negative CTCs isolated in the Mag-Gradient Chip. At the same time, the 71.3% of isolated EpCAM positive CTCs were isolated at the first half area whereas the 76.9% of EpCAM negative CTCs were collected at the latter half area. The Mag-Gradient Chip can isolate the 3ml of heterogeneous CTCs sample in 1h with high isolating yield. The EpCAM expression level dose not means essential condition of the metastatic CTCs, but the Mag-Gradient Chip can shorten the date to diagnose the cancer metastasis in clinic.
循环肿瘤细胞 (CTC) 通过血管网络从原发部位转移到继发部位的迁移机制导致肿瘤转移。尽管通过 CTC 诊断癌症转移非常重要,但由于癌症患者外周血样中 CTC 的稀有性和异质性,仍然难以在临床中应用。在这项研究中,我们开发了基于磁场梯度的微流控芯片 (Mag-Gradient Chip),用于分离样品中总 CTC 数量,并同时对 CTC 相对于上皮细胞黏附分子 (EpCAM) 表达水平的状态进行特征化。我们使用水热法合成了磁性纳米颗粒 (MNPs),并在其表面功能化抗 EpCAM,用于与 CTC 特异性结合。Mag-Gradient Chip 设计用于通过根据 EpCAM 表达水平在芯片的不同位置利用磁场差异来分离和分类 CTC。我们观察到在 Mag-Gradient Chip 中分离出 95.7%的 EpCAM 阳性和 79.3%的 EpCAM 阴性 CTC。同时,分离出的 71.3%的 EpCAM 阳性 CTC 位于前半区,而 76.9%的 EpCAM 阴性 CTC 位于后半区。Mag-Gradient Chip 可以在 1 小时内从 3ml 异质 CTCs 样品中以高分离率分离。EpCAM 表达水平并不是转移性 CTC 的必要条件,但 Mag-Gradient Chip 可以缩短在临床上诊断癌症转移的时间。