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Fluorescence image detection and reconstruction by subtractive light illumination using a digital micromirror device

机译:使用数字微镜设备通过减光照明进行荧光图像检测和重建

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In this study, we investigate fluorescence optical detection and image reconstruction based on modulated light illumination using a digital micromirror device (DMD). Fluorescence detection is one of the most common methods to study various cellular dynamics labeled with fluorescent indicators. Although employed in many cell-based assays, wide-field fluorescence microscopy provides poor axial sectioning capability that is insufficient to measure thick cell-based assays, e.g., those with 3D cell complex cultured in a thick extracellular matrix. Confocal fluorescence microscopy, on the other hand, provides good axial sectioning capability compared to wide-field fluorescence imaging. However, confocal microscopy is subject to temporal overhead associated with scanning to acquire fluorescence images. For image acquisition at enhanced axial sectioning with reduced processing load, we have developed a fluorescence optical detection system based on subtractive light illumination using a DMD. Compared to moving grid masks, a DMD provides fast and flexible scanning by modulating aperture patterns. Here, we report DMD-based structured light illumination for improved image reconstruction by separating in-focus and out-of-focus fluorescence components so that the system can achieve 3D fluorescence image stacks with enhanced axial sectioning capability. In this proof-of-concept study, the DMD-based structured light illumination system was evaluated by observing two-dimensionally deposited fluorescent microbeads and mixed pollen grains. Also shown was that the scanning time to obtain fluorescence images can be greatly reduced compared to confocal microscopy.
机译:在这项研究中,我们研究了使用数字微镜设备(DMD)基于调制光照明的荧光光学检测和图像重建。荧光检测是研究用荧光指示剂标记的各种细胞动力学的最常用方法之一。尽管在许多基于细胞的测定中采用了宽视野荧光显微镜,但其轴向切片能力较差,不足以测量基于厚细胞的测定,例如那些在厚细胞外基质中培养了3D细胞复合物的测定。另一方面,与广域荧光成像相比,共聚焦荧光显微镜可提供良好的轴向切片能力。然而,共聚焦显微镜经受与扫描以获得荧光图像相关的时间开销。为了在减少处理负荷的情况下以增强的轴向截面获取图像,我们开发了一种荧光光学检测系统,该系统基于使用DMD的减光照明。与移动栅格掩模相比,DMD通过调制孔径图案提供了快速而灵活的扫描。在这里,我们报告了基于DMD的结构化照明,它通过分离焦点内和焦点外的荧光成分来改善图像重建,从而使系统可以实现具有增强的轴向切片能力的3D荧光图像堆栈。在此概念验证研究中,通过观察二维沉积的荧光微珠和混合的花粉颗粒,对基于DMD的结构光照明系统进行了评估。还显示与共聚焦显微镜相比,可以大大减少获得荧光图像的扫描时间。

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