论文标题

单光束声学镊子的细胞选择性操纵

Cell selective manipulation with single beam acoustical tweezers

论文作者

Baudoin, Michael, Thomas, Jean-Louis, Sahely, Roudy Al, Gerbedoen, Jean-Claude, Gong, Zhixiong, Sivery, Aude, Matar, Olivier, Smagin, Nikolay, Favreau, Peter, Vlandas, Alexis

论文摘要

声学镊子为细胞和微生物的微生物学上的主要前景开放了无接触式操纵,组织和机械性能测试,因为它们是生物相容性的,无标记的,并且可以在等效波能力下发挥比其光学对应物大的数量级。然而,到目前为止,这些巨大的观点因缺乏现有的声学镊子的选择性而受到阻碍,即,能够单独选择和移动对象的能力 - 和/或它们的有限分辨率仅限于将其用于大粒子操作的使用。在这里,我们报告了标准显微镜环境中人类细胞的精确选择性无接触式操纵和定位,而不会改变其生存能力。据报道,捕获力最高为$ \ sim $ 200 pn,驱动力少于2兆瓦。实体的选择性,微型化和捕获力是通过将全息图与源自半导体工业产生的活性材料和制造技术相结合,以合成特定的波场(称为聚焦的声学涡流),旨在生产僵硬的局部陷阱。我们预计,这项工作将成为声学镊子在组织工程,细胞机械转导分析,神经网络研究或移动微生物成像中的多种多样的田野中广泛应用的起点,强制性地进行了压力的精确操作和/或控制的应力应用。

Acoustical tweezers open major prospects in microbiology for cells and microorganisms contactless manipulation, organization and mechanical properties testing since they are biocompatible, label-free and can exert forces several orders of magnitude larger than their optical counterpart at equivalent wave power. Yet, these tremendous perspectives have so far been hindered by the absence of selectivity of existing acoustical tweezers -- i.e., the ability to select and move objects individually -- and/or their limited resolution restricting their use to large particle manipulation only. Here, we report precise selective contactless manipulation and positioning of human cells in a standard microscopy environment, without altering their viability. Trapping forces of up to $\sim$ 200 pN are reported with less than 2 mW of driving power. The unprecedented selectivity, miniaturization and trapping force are achieved by combining holography with active materials and fabrication techniques derived from the semi-conductor industry to synthesize specific wavefields (called focused acoustical vortices) designed to produce stiff localized traps. We anticipate this work to be a starting point toward widespread applications of acoustical tweezers in fields as diverse as tissue engineering, cell mechano-transduction analysis, neural network study or mobile microorganisms imaging, for which precise manipulation and/or controlled application of stresses is mandatory.

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