多模纤维:通往深层组织荧光显微镜的途径

M. Plöschner, T. Tyc, T. Čižmár
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引用次数: 0

摘要

荧光显微镜已成为生命科学成像的关键平台。近年来,其不同的模式取得了压倒性的成功,伴随着各种努力进行成像更深的活体组织。这些努力的一个关键挑战是克服这种环境下光的散射和吸收。多种策略(如多光子、波前校正技术)将穿透深度扩展到目前最先进的约1000μm,分辨率约为1μm。唯一可行的成像比这更深的策略是使用基于纤维束的内窥镜。然而,这种设备缺乏分辨率,而且占地面积大(直径1毫米),这就禁止了它们在涉及活体动物组织深处的研究中使用。我们最近展示了一种全新的方法,通过一种极薄(直径几十微米)的圆柱形玻璃管(称为多模光纤(MMF))将光传递到感兴趣的地方。与光纤束技术相比,这种传输方式的侵入性要小得多,而且它还具有更高的分辨率,并且能够在没有任何辅助光学器件的情况下在光纤后面的任何平面上成像。这种令人兴奋的技术的两个最重要的限制是:(1)缺乏弯曲灵活性和(2)对计算能力的高要求,使得这种系统的性能缓慢。我们将讨论如何克服这些限制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multimode fibres: a pathway towards deep-tissue fluorescence microscopy
Fluorescence microscopy has emerged as a pivotal platform for imaging in the life sciences. In recent years, the overwhelming success of its different modalities has been accompanied by various efforts to carry out imaging deeper inside living tissues. A key challenge of these efforts is to overcome scattering and absorption of light in such environments. Multiple strategies (e.g. multi-photon, wavefront correction techniques) extended the penetration depth to the current state-of-the-art of about 1000μm at the resolution of approximately 1μm. The only viable strategy for imaging deeper than this is by employing a fibre bundle based endoscope. However, such devices lack resolution and have a significant footprint (1mm in diameter), which prohibits their use in studies involving tissues deep in live animals. We have recently demonstrated a radically new approach that delivers the light in/out of place of interest through an extremely thin (tens of microns in diameter) cylindrical glass tube called a multimode optical fibre (MMF). Not only is this type of delivery much less invasive compared to fibre bundle technology, it also enables higher resolution and has the ability to image at any plane behind the fibre without any auxiliary optics. The two most important limitations of this exciting technology are (i) the lack of bending flexibility and (ii) high demands on computational power, making the performance of such systems slow. We will discuss how to overcome these limitations.
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