NEST, Istituto Nanoscienze-CNR and Scuola Normale Superiore , Piazza San Silvestro 12 , 56127 Pisa , Italy.
Center for Nanotechnology Innovation@NEST , Istituto Italiano di Tecnologia , Piazza San Silvestro 12 , 56127 Pisa , Italy.
Anal Chem. 2018 Jun 19;90(12):7450-7457. doi: 10.1021/acs.analchem.8b00972. Epub 2018 Jun 1.
In the last few decades, new types of cell cultures have been introduced to provide better cell survival and development, with micro- and nanoenvironmental physicochemical conditions aimed at mimicking those present in vivo. However, despite the efforts made, the systems available to date are often difficult to replicate and use. Here, an easy-to-use surface-acoustic-wave (SAW)-based platform is presented for realizing dynamic cell cultures that is compatible with standard optical microscopes, incubators, and cell-culture dishes. The SAW chip is coupled to a standard Petri dish via a polydimethylsiloxane (PDMS) disc and consists of a lithium niobate (LN) substrate on which gold interdigital transducers (IDTs) are patterned to generate the SAWs and induce acoustic streaming in the dish. SAW excitation is verified and characterized by laser Doppler vibrometry, and the fluid dynamics is studied by microparticle image velocimetry (μPIV). Heating is measured by an infrared (IR) thermal camera. We finally tested this device with the U-937 monocyte cell line for viability and proliferation and cell-morphological analysis. The data demonstrate that it is possible to induce significant fluid recirculation within the Petri dish while maintaining negligible heating. Remarkably, cell proliferation in this condition was enhanced by 36 ± 12% with respect to those of standard static cultures. Finally, we show that cell death does not increase and that cell morphology is not altered in the presence of SAWs. This device is the first demonstration that SAW-induced streaming can mechanically improve cell proliferation and further supports the great versatility and biocompatibility of the SAW technology for cell manipulation.
在过去的几十年中,已经引入了新型的细胞培养物,以提供更好的细胞生存和发展,其微纳米环境物理化学条件旨在模拟体内存在的条件。然而,尽管已经做出了努力,但是迄今为止可用的系统通常难以复制和使用。在这里,提出了一种易于使用的基于表面声波(SAW)的平台,用于实现与标准光学显微镜、孵育箱和细胞培养皿兼容的动态细胞培养。SAW 芯片通过聚二甲基硅氧烷(PDMS)圆盘与标准培养皿耦合,由铌酸锂(LN)基板组成,在该基板上图案化了金叉指换能器(IDT)以产生 SAW 并在培养皿中诱导声流。通过激光多普勒测振仪验证和表征 SAW 激励,通过微粒子图像测速(μPIV)研究流体动力学。通过红外(IR)热像仪测量加热。最后,我们使用 U-937 单核细胞系进行了该设备的生存力和增殖以及细胞形态分析测试。数据表明,在保持微乎其微的加热的同时,有可能在培养皿中引起明显的流体再循环。值得注意的是,与标准静态培养相比,在此条件下细胞增殖增强了 36±12%。最后,我们表明在存在 SAW 的情况下细胞死亡不会增加,并且细胞形态不会改变。该设备首次证明了 SAW 诱导的流动可以机械地改善细胞增殖,并进一步支持了 SAW 技术在细胞操作中的巨大多功能性和生物相容性。