Puerto Andrés, Bella José L, López-Fernández Carmen, García-Cabañes Angel, Carrascosa Mercedes
Departamento de Física de Materiales, Universidad Autónoma de Madrid, c/ Francisco Tomás y Valiente, 7, 28049 Madrid, Spain.
Departamento de Biología, Universidad Autónoma de Madrid, c/ Darwin, 2, 28049 Madrid, Spain.
Biomed Opt Express. 2021 Sep 30;12(10):6601-6613. doi: 10.1364/BOE.435730. eCollection 2021 Oct 1.
Photovoltaic optoelectronic tweezers are a useful platform with many applications in optical manipulation and nanotechnology. They are based on electrical forces associated with the bulk photovoltaic effect presented by certain ferroelectric crystals, such as Fe doped lithium niobate. This manipulation technique has experienced huge developments in recent years, although its use in biology and biomedicine is still scarce. Recently, a novel strategy has been reported that extends the platform capabilities to the manipulation of polar droplets, such as water and aqueous bio-droplets, promising great potential for biological applications. In this work, we are taking this challenge, addressing the manipulation of cells and macromolecules contained inside the droplets by optoelectronic ferroelectric platforms. On the one hand, experiments of photoelectric induced migration of DNA and sperm droplets have been successfully developed and the corresponding droplet dynamics have been analyzed in depth. From this analysis, parameters of the biomaterial such as its concentration and its electrical charge have been evaluated, showing the sensing capabilities of the platform. In fact, the charge of sperm cells has been demonstrated to be negative, and the relative sperm concentration of the samples determined. On the other hand, experiments on the light-induced merging of two droplets have been carried out. Specifically, sperm droplets are mixed with droplets containing acridine orange, a convenient dye for visualization purposes. The spermatozoa become clearly visible in the final droplet through fluorescence imaging. The results point out the multiple possibilities of application of the optoelectronic ferroelectric platform in biology and biomedicine including the development of "lab on a chip" devices. Hence, these capabilities introduce these platforms as an efficient tool in biotechnology.
光伏光电镊子是一个有用的平台,在光学操纵和纳米技术中有许多应用。它们基于与某些铁电晶体(如掺铁铌酸锂)呈现的体光伏效应相关的电力。近年来,这种操纵技术有了巨大的发展,尽管其在生物学和生物医学中的应用仍然很少。最近,有报道称一种新策略将该平台的能力扩展到对极性液滴(如水和水性生物液滴)的操纵,这为生物应用带来了巨大潜力。在这项工作中,我们正在迎接这一挑战,通过光电铁电平台来解决对液滴内包含的细胞和大分子的操纵问题。一方面,已经成功开展了DNA和精子液滴的光电诱导迁移实验,并对相应的液滴动力学进行了深入分析。通过这种分析,评估了生物材料的参数,如浓度和电荷,展示了该平台的传感能力。事实上,已证明精子细胞带负电荷,并确定了样品中精子的相对浓度。另一方面,进行了两个液滴的光诱导合并实验。具体来说,将精子液滴与含有吖啶橙(一种用于可视化的方便染料)的液滴混合。通过荧光成像,精子在最终的液滴中清晰可见。结果指出了光电铁电平台在生物学和生物医学中的多种应用可能性,包括“芯片实验室”设备的开发。因此,这些能力将这些平台引入为生物技术中的一种有效工具。