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Label-Free High-Throughput Measurements of Dynamic Changes in Cell Nuclei Using Angle-Resolved Low Coherence Interferometry

机译:使用角度分辨低相干干涉法的细胞核动态变化的无标记高通量测量

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摘要

Accurate measurements of nuclear deformation, i.e., structural changes of the nucleus in response to environmental stimuli, are important for signal transduction studies. Traditionally, these measurements require labeling and imaging, and then nuclear measurement using image analysis. This approach is time-consuming, invasive, and unavoidably perturbs cellular systems. Light scattering, an emerging biophotonics technique for probing physical characteristics of living systems, offers a promising alternative. Angle-resolved low-coherence interferometry (a/LCI), a novel light scattering technique, was developed to quantify nuclear morphology for early cancer detection. In this study, a/LCI is used for the first time to noninvasively measure small changes in nuclear morphology in response to environmental stimuli. With this new application, we broaden the potential uses of a/LCI by demonstrating high-throughput measurements and by probing aspherical nuclei. To demonstrate the versatility of this approach, two distinct models relevant to current investigations in cell and tissue engineering research are used. Structural changes in cell nuclei due to subtle environmental stimuli, including substrate topography and osmotic pressure, are profiled rapidly without disrupting the cells or introducing artifacts associated with traditional measurements. Accuracy ≥ 3% is obtained for the range of nuclear geometries examined here, with the greatest deviations occurring for the more complex geometries. Given the high-throughput nature of the measurements, this deviation may be acceptable for many biological applications that seek to establish connections between morphology and function.
机译:准确测量核变形,即响应环境刺激的核结构变化,对于信号转导研究很重要。传统上,这些测量需要标记和成像,然后再使用图像分析进行核测量。这种方法是耗时的,侵入性的,并且不可避免地扰动了蜂窝系统。光散射是一种探测生命系统物理特征的新兴生物光子技术,提供了一种有前途的替代方法。角度分辨低相干干涉测量法(a / LCI)是一种新型的光散射技术,用于量化核形态以用于早期癌症检测。在这项研究中,a / LCI首次用于无创地测量响应环境刺激的核形态的微小变化。借助这一新应用,我们将通过演示高通量测量和探测非球面核来扩展a / LCI的潜在用途。为了证明这种方法的多功能性,使用了与细胞和组织工程研究中当前研究相关的两个不同模型。由于微妙的环境刺激(包括底物形貌和渗透压)而引起的细胞核结构变化,可以迅速显示出来,而不会破坏细胞或引入与传统测量相关的伪影。在此检查的核几何范围内,精度≥3%,对于更复杂的几何形状,偏差最大。考虑到测量的高通量性质,这种偏差对于许多寻求在形态和功能之间建立联系的生物学应用来说是可以接受的。

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