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首页> 外文期刊>Diatom Research >Digital holographic microscopy: a novel tool to study the morphology, physiology and ecology of diatoms
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Digital holographic microscopy: a novel tool to study the morphology, physiology and ecology of diatoms

机译:数字全息显微镜:研究硅藻的形态,生理学和生态学的新颖工具

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摘要

Recent advances in optical components, computational hardware and image analysis algorithms have led to the development of a powerful new imaging tool, digital holographic microscopy (DHM). So far, DHM has been predominantly applied in the life sciences and medical research, and here, we evaluate the potential of DHM within a marine context, i.e. for studying the morphology, physiology and ecology of diatoms. Like classical light microscopy, DHM captures light-intensity information from objects, but in addition, it also records the so-called phase information. Because this phase information is recorded in a fully quantitative way, it gives access to a whole new type of image properties, which suitably extend the range of microscopy applications in diatom research. Here, we demonstrate the ability of DHM to provide structural information on internal cell organelles as well as the silica frustules of diatoms. By combining the light intensity and phase information, one also obtains the optical 'fingerprint' of a cell, which can be used to discriminate between cells of separate diatom species or to differentiate between living and dead cells (as demonstrated here for two diatom species Navicula sp. and Nitzschia cf. pellucida). Finally, we use chains of Melosira sp. to demonstrate the capacity of DHM to refocus post-acquisition, and combine holograms with fluorescent images, and the ability of DHM to image transparent substances, such as extracellular polymeric substances. Overall, DHM is a promising versatile microscopic technique, allowing diatoms to be investigated in vivo, over time, without the need for staining, and quantitatively in terms of their phase information. Thus, DHM can provide new insights into the structure, as well as the physiology and ecology of diatoms.
机译:光学组件,计算硬件和图像分析算法的最新进展导致了功能强大的新型成像工具数字全息显微镜(DHM)的发展。到目前为止,DHM主要用于生命科学和医学研究,在这里,我们评估DHM在海洋环境中的潜力,即用于研究硅藻的形态,生理学和生态学。像传统的光学显微镜一样,DHM可以捕获物体的光强度信息,但除此之外,它还可以记录所谓的相位信息。由于该阶段信息是以完全定量的方式记录的,因此可以访问全新的图像属性类型,从而适当地扩展了硅藻研究中显微镜应用的范围。在这里,我们证明DHM能够提供内部细胞器以及硅藻的硅藻壳结构信息。通过结合光强度和相位信息,还可以获得细胞的光学“指纹”,可用于区分不同硅藻物种的细胞或区分活细胞和死细胞(如此处针对两种硅藻物种Navicula所展示的) sp。and Nitzschia cf. pellucida)。最后,我们使用Melosira sp。的链。展示DHM重新采集后聚焦的能力,并将全息图与荧光图像结合起来,以及DHM对透明物质(例如细胞外聚合物质)成像的能力。总的来说,DHM是一种很有前途的多功能显微技术,它允许随着时间的推移在硅藻体内进行研究,而无需染色,并且可以定量分析其相信息。因此,DHM可以为硅藻的结构以及生理学和生态学提供新的见解。

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