Integrated 3D Microfluidic Device for Impedance Spectroscopy in Lab-on-Chip Systems

A. Buzzin, L. Iannascoli, M. Muzi, A. Veroli, D. Caputo, G. Cesare, L. Maiolo, F. Maita, G. Ricci
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引用次数: 1

Abstract

In this paper we demonstrate the implementation of a micro-scaled integrated system with the aim to sort, estimate and monitor the biomass of living cancer cells suspended in a culture medium. For this purpose, a 3D microfluidic network is designed to route small volumes of biological samples to the testing sites and dielectric spectroscopy is chosen as investigation method. Comparative electrical analyses are guaranteed by the separation of sole medium and medium-cells mixture in two different areas of the chip. A polyimide-based micro-sieve, placed between two microfluidic channels, is used to perform cell filtering and sorting. Two couples of thin-film metal electrodes ensure the comparative dielectric measurements of the separated materials. Preliminary experiments were carried out in order to test the microfluidics and demonstrate its particle-separating capabilities. The first results prove the robustness of the chosen materials, the effectiveness of the micro-sieving device in terms of particle separation from a liquid solution and its successful integration in the microfluidics. The proposed system represents a promising step for the development of novel valid solutions in the field of micro-scaled integrated cell sorting, cell monitoring and cell counting for a wide range of applications, such as tissue engineering, tumor cells research and biological monitoring in space environment
集成三维微流控阻抗谱仪在芯片实验室系统
在本文中,我们演示了一个微型集成系统的实现,目的是对悬浮在培养基中的活癌细胞的生物量进行分类、估计和监测。为此,设计了一个三维微流控网络,将小体积的生物样品输送到测试点,并选择介电光谱作为调查方法。通过在芯片的两个不同区域分离单一介质和介质-细胞混合物,保证了比较电分析。聚酰亚胺基微筛,放置在两个微流体通道之间,用于执行细胞过滤和分选。两对薄膜金属电极确保分离材料的比较介电测量。为了测试微流体的性能并验证其颗粒分离能力,进行了初步实验。第一个结果证明了所选材料的稳健性,微筛装置在从液体溶液中分离颗粒方面的有效性,以及它在微流体中的成功集成。该系统为在组织工程、肿瘤细胞研究和空间环境生物监测等广泛应用的微尺度集成细胞分选、细胞监测和细胞计数领域开发新颖有效的解决方案迈出了有希望的一步
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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