Martinez Vazquez R, Nava G, Veglione M, Yang T, Bragheri F, Minzioni P, Bianchi E, Di Tano M, Chiodi I, Osellame R, Mondello C, Cristiani I
Istituto di Fotonica e Nanotecnologie (IFN)-CNR, Piazza Leonardo da Vinci 32, 20133 Milano, Italy.
Integr Biol (Camb). 2015 Apr;7(4):477-84. doi: 10.1039/c5ib00023h.
Cellular mechanical properties constitute good markers to characterize tumor cells, to study cell population heterogeneity and to highlight the effect of drug treatments. In this work, we describe the fabrication and validation of an integrated optofluidic chip capable of analyzing cellular deformability on the basis of the pressure gradient needed to push a cell through a narrow constriction. We demonstrate the ability of the chip to discriminate between tumorigenic and metastatic breast cancer cells (MCF7 and MDA-MB231) and between human melanoma cells with different metastatic potential (A375P and A375MC2). Moreover, we show that this chip allows highlighting the effect of drugs interfering with microtubule organization (paclitaxel, combretastatin A-4 and nocodazole) on cancer cells, which leads to changes in the pressure-gradient required to push cells through the constriction. Our single-cell microfluidic device for mechanical evaluation is compact and easy to use, allowing for an extensive use in different laboratory environments.
细胞力学特性是表征肿瘤细胞、研究细胞群体异质性以及突出药物治疗效果的良好标志物。在这项工作中,我们描述了一种集成光流控芯片的制造与验证,该芯片能够基于推动细胞通过狭窄通道所需的压力梯度来分析细胞变形能力。我们展示了该芯片区分致瘤性和转移性乳腺癌细胞(MCF7和MDA - MB231)以及具有不同转移潜能的人黑色素瘤细胞(A375P和A375MC2)的能力。此外,我们表明该芯片能够突出干扰微管组织的药物(紫杉醇、康普瑞他汀A - 4和诺考达唑)对癌细胞的影响,这会导致推动细胞通过通道所需的压力梯度发生变化。我们用于力学评估的单细胞微流控装置紧凑且易于使用,可在不同实验室环境中广泛应用。