Mejía Morales J, Glynne-Jones P, Vassalli M, Lippi G L
Institut de Physique de Nice, Université Côte d'Azur, CNRS, 06560, Valbonne, France.
Department of Experimental Medicine, University of Genova, 16149, Genova, Italy.
Eur Biophys J. 2022 Mar;51(2):185-191. doi: 10.1007/s00249-021-01585-7. Epub 2022 Jan 12.
High-throughput single-cell analysis based on physical properties (such as morphology or mechanics) is emerging as a powerful tool to inform clinical research, with a great potential for translation towards diagnosis. Here we present a novel microfluidic approach adopting acoustic waves to manipulate and mechanically stimulate single cells, and interferometry to track changes in the morphology and measure size, deformability, and refractive index of non-adherent cells. The method is based on the integration within the acoustofluidic channel of a low-finesse Fabry-Perot resonator, providing very high sensitivity and a speed potentially suitable to obtain the high-throughput necessary to handle the variability stemming from the biological diversity of single cells. The proposed approach is applied to a set of different samples: reference polystyrene beads, algae and yeast. The results demonstrate the capability of the acoustofluidic interferometric device to detect and quantify optomechanical properties of single cells with a throughput suitable to address label-free single-cell clinical analysis.
基于物理特性(如形态或力学性质)的高通量单细胞分析正逐渐成为临床研究的有力工具,在转化为诊断方法方面具有巨大潜力。在此,我们展示了一种新颖的微流控方法,该方法采用声波来操纵和机械刺激单细胞,并利用干涉测量法跟踪形态变化以及测量非贴壁细胞的大小、可变形性和折射率。该方法基于在声流控通道内集成低精细度法布里 - 珀罗谐振器,具有非常高的灵敏度和速度,这一速度可能适合获取处理因单细胞生物多样性产生的变异性所需的高通量。所提出的方法应用于一组不同的样本:参考聚苯乙烯珠、藻类和酵母。结果表明,声流控干涉测量设备有能力以适合进行无标记单细胞临床分析的通量来检测和量化单细胞的光机械特性。