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Probing cellular mechanics with acoustic force spectroscopy

机译:用声力谱探测细胞力学

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A large number of studies demonstrate that cell mechanics and pathology are intimately linked. In particular, deformability of red blood cells (RBCs) is key to their function and is dramatically altered in the time course of diseases such as anemia and malaria. Due to the physiological importance of cell mechanics, many methods for cell mechanical probing have been developed. While single-cell methods provide very valuable information, they are often technically challenging and lack the high data throughput needed to distinguish differences in heterogeneous populations, while fluid-flow high-throughput methods miss the accuracy to detect subtle differences. Here we present a new method for multiplexed single-cell mechanical probing using acoustic force spectroscopy (AFS). We demonstrate that mechanical differences induced by chemical treatments of known effect can be measured and quantified. Furthermore, we explore the effect of extracellular vesicles (EVs) uptake on RBC mechanics and demonstrate that EVs uptake increases RBC deformability. Our findings demonstrate the ability of AFS to manipulate cells with high stability and precision and pave the way to further new insights into cellular mechanics and mechanobiology in health and disease, as well as potential biomedical applications.
机译:大量研究表明,细胞力学与病理学密切相关。尤其是,红细胞(RBC)的变形能力是其功能的关键,并且在诸如贫血和疟疾等疾病的时程中会发生巨大变化。由于细胞力学的生理重要性,已经开发了许多用于细胞力学探测的方法。尽管单细胞方法提供了非常有价值的信息,但它们通常在技术上具有挑战性,并且缺乏区分异类种群差异所需的高数据吞吐量,而流体流动高通量方法却无法检测出细微差异。在这里,我们介绍了一种使用声力谱(AFS)进行多路复用单细胞机械探测的新方法。我们证明,可以测量和量化由已知作用的化学处理引起的机械差异。此外,我们探讨了胞外小泡(EVs)摄取对RBC力学的影响,并证明EVs摄取增加了RBC的可变形性。我们的发现证明了AFS能够以高稳定性和精确度操纵细胞,并为进一步深入了解健康和疾病中的细胞力学和力学生物学以及潜在的生物医学应用铺平了道路。

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