Substrate developments for exploring living cells in culture with quantitative phase imaging: towards label-free high-content screening (Conference Presentation)

P. Marquet, E. Bélanger, Bertrand de-Dorlodot, Émile Rioux-Pélerin, S. Lévesque
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Abstract

Quantitative Phase Imaging (QPI) has recently emerged as a powerful new imaging modality to non-invasively visualize transparent specimens, including living cells in culture. Among different QPI techniques, Quantitative Phase Digital Holographic Microscopy (QP-DHM) is particularly well suited to explore, with a nanometric axial sensitivity, cell structure and dynamics. Concretely, accurate interferometric measurements of the phase retardation of a light wave when transmitted through living cells are performed. This phase retardation, namely the Quantitative Phase Signal (QPS) depends on both the thickness of the observed cells as well as the difference between its refractive index (RI) nc and that of the surrounding medium nm. This RI difference is generated by the presence of organic molecules, including proteins, DNA, organelles, nuclei present in cells. QPS provides thus information about both cell morphology and cell contents. According to this intracellular RI dependency, QPI has proven to be successful in performing cell counting, recognition and classification, the monitoring of cellular dry mass, cell membrane fluctuations analysis as well as the reconstruction, through tomographic approaches, of the intracellular 3D refractive index distribution. Furthermore, thanks to the development of different experimental procedures, additional relevant biophysical cell parameters were successfully calculated, including membrane mechanical properties, osmotic membrane water permeability, transmembrane water movements and the RI of transmembrane solute flux. However, all these cell parameters can be quantitatively and accurately measured provided that both the QPS exhibits a high stability and the RI value of the surrounding medium nm is accurately known. Any changes of nm will significantly affect the measurements of all these cellular parameters, comprising thus the major advantage of QPI, its quantitative aspects. This particularly the case, for the applications claiming a quantitative evaluation of the cellular dry mass as well as when compounds are directly added to the perfusion solutions for performing either screening or specific pharmacological experiments dedicated to decipher specific cellular processes. In this talk, we will present different substrates — coverslips and do-it-yourself 3D-printed flow chambers — that we have developed, which meet the challenge, when combined with QP-DHM of obtaining highly stable QPS as well of measuring in real time and with the accuracy of ±0.00004 the absolute values of refractive index of the surrounding medium in the vicinity of living cells. Specifically, such accuracy can be obtained thanks to the high QPS stability resulting from the QP-DHM capability to propagate the whole object wave (amplitude and phase) diffracted by the observed specimen during the numerical reconstruction of the digitally recorded holograms. Indeed, this 3D wavefront numerical reconstruction can efficiently compensate for experimental artifacts including lens defects, and noise originating from vibrations or thermal drift. These results pave the way for developing, based on QP-DHM technology, label-free high-content screening approaches to study test compound effects in cellular disease‐modeling systems.
用定量相成像探索培养活细胞的底物发展:迈向无标签高含量筛选(会议报告)
定量相位成像(QPI)最近成为一种强大的新成像方式,用于非侵入性地可视化透明标本,包括培养中的活细胞。在不同的QPI技术中,定量相位数字全息显微镜(QP-DHM)特别适合于探索,具有纳米级轴向灵敏度,细胞结构和动力学。具体地说,对光波通过活细胞传播时的相位延迟进行了精确的干涉测量。这种相位延迟,即定量相位信号(QPS)既取决于被观察细胞的厚度,也取决于其折射率(RI) nc与周围介质nm之间的差值。这种RI差异是由细胞中存在的有机分子产生的,包括蛋白质、DNA、细胞器、细胞核。因此,QPS提供了关于细胞形态和细胞内容的信息。根据这种细胞内的RI依赖性,QPI已被证明在细胞计数、识别和分类、细胞干质量监测、细胞膜波动分析以及通过层析成像方法重建细胞内三维折射率分布方面是成功的。此外,由于不同实验方法的发展,成功地计算了其他相关的生物物理细胞参数,包括膜力学性能,渗透膜透水性,跨膜水运动和跨膜溶质通量的RI。然而,只要QPS具有较高的稳定性,并且准确地知道周围介质nm的RI值,就可以定量准确地测量所有这些细胞参数。纳米的任何变化都会显著影响所有这些细胞参数的测量,因此构成了QPI的主要优势,它的定量方面。对于要求对细胞干质量进行定量评估的应用,以及当化合物直接添加到灌注溶液中以执行筛选或专门用于破译特定细胞过程的特定药理学实验时,尤其如此。在这次演讲中,我们将展示我们开发的不同的基板-盖层和diy 3d打印流室,这些基板与QP-DHM相结合,可以获得高度稳定的QPS,并实时测量活细胞附近周围介质的折射率绝对值,精度为±0.00004。具体来说,这种精度可以通过高QPS稳定性获得,这要归功于QP-DHM在数字记录全息图的数值重建过程中传播被观察标本衍射的整个物体波(振幅和相位)的能力。事实上,这种三维波前数值重建可以有效地补偿包括透镜缺陷在内的实验伪影,以及由振动或热漂移引起的噪声。这些结果为开发基于QP-DHM技术的无标记高含量筛选方法铺平了道路,以研究细胞疾病建模系统中的测试化合物效应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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