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Multiview microscopy of single cells through microstructure-based indirect optical manipulation

机译:通过基于微结构的间接光学操作对单个细胞进行多视图显微镜检查

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摘要

Fluorescent observation of cells generally suffers from the limited axial resolution due to the elongated point spread function of the microscope optics. Consequently, three-dimensional imaging results in axial resolution that is several times worse than the transversal. The optical solutions to this problem usually require complicated optics and extreme spatial stability. A straightforward way to eliminate anisotropic resolution is to fuse images recorded from multiple viewing directions achieved mostly by the mechanical rotation of the entire sample. In the presented approach, multiview imaging of single cells is implemented by rotating them around an axis perpendicular to the optical axis by means of holographic optical tweezers. For this, the cells are indirectly trapped and manipulated with special microtools made with two-photon polymerization. The cell is firmly attached to the microtool and is precisely manipulated with 6 degrees of freedom. The total control over the cells' position allows for its multiview fluorescence imaging from arbitrarily selected directions. The image stacks obtained this way are combined into one 3D image array with a multiview image processing pipeline resulting in isotropic optical resolution that approaches the lateral diffraction limit. The presented tool and manipulation scheme can be readily applied in various microscope platforms.
机译:由于显微镜光学器件的拉长点扩展功能,对细胞的荧光观察通常受轴向分辨率的限制。因此,三维成像会导致轴向分辨率比横向分辨率差好几倍。解决该问题的光学解决方案通常需要复杂的光学器件和极高的空间稳定性。消除各向异性分辨率的一种直接方法是融合从多个观察方向记录的图像,这些图像主要是通过整个样本的机械旋转实现的。在提出的方法中,借助于全息光镊通过围绕垂直于光轴的轴旋转单细胞来实现单细胞的多视图成像。为此,细胞是用双光子聚合反应制得的特殊微型工具间接捕获和操纵的。样品池牢固地连接到微型工具,并以6个自由度进行精确操作。对细胞位置的完全控制允许从任意选择的方向进行多视图荧光成像。通过多视图图像处理管线将以此方式获得的图像堆栈组合为一个3D图像阵列,从而导致各向同性的光学分辨率接近横向衍射极限。提出的工具和操作方案可以很容易地应用于各种显微镜平台。

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