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Coherence-controlled holographic microscopy for live-cell quantitative phase imaging

机译:活性细胞定量相成像的相干控制全息显微镜

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In this paper we present coherence-controlled holographic microscopy (CCHM) and various examples of observations of living cells including combination of CCHM with fluorescence microscopy. CCHM is a novel technique of quantitative phase imaging (QPI). It is based on grating off-axis interferometer, which is fully adapted for the use of incoherent illumination. This enables high-quality QPI free from speckles and parasitic interferences and lateral resolution of classical widefield microscopes. Label-free nature of QPI makes CCHM a useful tool for long-term observations of living cells. Moreover, coherence-gating effect induced by the use of incoherent illumination enables QPI of cells even in scattering media. Combination of CCHM with common imaging techniques brings the possibility to exploit advantages of QPI while simultaneously identifying the observed structures or processes by well-established imaging methods. We used CCHM for investigation of general parameters of cell life cycles and for research of cells reactions to different treatment. Cells were also visualized in 3D collagen gel with the use of CCHM. It was found that both the cell activity and movement of the collagen fibers can be registered. The method of CCHM in combination with fluorescence microscopy was used in order to obtain complementary information about cell morphology and identify typical morphological changes associated with different types of cell death. This combination of CCHM with common imaging technique has a potential to provide new knowledge about various processes and simultaneously their confirmation by comparison with known imaging method.
机译:在本文中,我们呈现相干控制的全息显微镜(CCHM)和生物细胞观察的各种实例,包括CCHM与荧光显微镜的组合。 CCHM是一种新颖的定量相成像技术(QPI)。它是基于光栅轴外干涉仪,其完全适合使用非连贯的照明。这使得高质量的QPI免于斑点和寄生干扰和古典宽场显微镜的横向分辨率。 QPI的无标签性质使CCHM成为活细胞长期观察的有用工具。此外,通过使用非连贯照明诱导的相干效果使得即使在散射介质中也能够QPI。 CCHM与常见成像技术的组合带来了利用QPI的优点,同时通过良好的成熟成像方法识别观察到的结构或过程。我们使用CCHM来调查细胞生命周期的一般参数,并研究细胞对不同治疗的反应。在3D胶原凝胶中也使用CCHM在3D胶原凝胶中可视化细胞。发现可以注册胶原纤维的细胞活性和运动。使用CCHM与荧光显微镜组合的方法以获得关于细胞形态的互补信息,并确定与不同类型的细胞死亡相关的典型形态学变化。 CCHM与常见成像技术的这种组合具有潜力,可以提供关于各种过程的新知识,并通过与已知的成像方法进行比较同时进行确认。

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