Laboratoire de Microsystemes (LMIS4), Institute of Microengineering, École Polytechnique Fédérale de Lausanne (EPFL), Station 17, CH-1015 Lausanne, Switzerland.
Lab Chip. 2014 Jul 21;14(14):2548-55. doi: 10.1039/c4lc00221k.
Cell shape is a fundamental biological feature, providing specific information about physiological or pathological cellular conditions. Most of the state-of-the-art microfluidic cytometers, however, only allow simple cell analysis, including viability studies, cell counting and sorting. In this work, we present a non-invasive, label-free device capable of single cell morphology discrimination in continuous flow. The device is based on the principle of liquid electrodes, fabricated in a cross configuration around a sensing zone. This arrangement allows measurement of cell impedance along orthogonal orientations and extraction of an index describing cell shape anisotropy. By adding prior to the sensing volume a series of lateral liquid electrodes, the particle stream was focused toward the channel midline and each cell was oriented in a specific direction before shape sensing. We demonstrate the proof of concept by performing spherical and elongated particle discrimination. As an application, we show that the shape changes experienced during cell division can be monitored and characterized. In particular, budding yeasts at different stages of the mitotic cycle were identified by extracting their anisotropy index.
细胞形态是一种基本的生物学特征,提供了关于生理或病理细胞状态的特定信息。然而,大多数最先进的微流控细胞仪仅允许进行简单的细胞分析,包括活力研究、细胞计数和分选。在这项工作中,我们提出了一种非侵入性、无需标记的设备,能够在连续流动中进行单细胞形态识别。该设备基于液体电极原理,以交叉配置方式围绕感测区域制造。这种布置允许沿着正交方向测量细胞阻抗,并提取描述细胞形状各向异性的指数。通过在感测体积之前添加一系列横向液体电极,颗粒流被聚焦到通道中线,并且每个细胞在进行形状感测之前都被定向在特定方向。我们通过进行球形和细长颗粒的区分来证明概念验证。作为应用,我们表明可以监测和表征细胞分裂过程中经历的形状变化。特别是,通过提取各向异性指数,识别出有丝分裂周期不同阶段的出芽酵母。