Zong Weijian, Huang Xiaoshuai, Zhang Chi, Yuan Tianyi, Zhu Ling-Ling, Fan Ming, Chen Liangyi
Department of Cognitive Sciences, Institute of Basic Medical Sciences, Beijing 100850, China ; The State Key Laboratory of Biomembrane and Membrane Biotechnology, Beijing Key Laboratory of Cardio Metabolic Molecular Medicine, Institute of Molecular Medicine, Peking University, Beijing 100871, China.
The State Key Laboratory of Biomembrane and Membrane Biotechnology, Beijing Key Laboratory of Cardio Metabolic Molecular Medicine, Institute of Molecular Medicine, Peking University, Beijing 100871, China.
Biomed Opt Express. 2014 Apr 15;5(5):1530-40. doi: 10.1364/BOE.5.001530. eCollection 2014 May 1.
Total-internal-reflection fluorescence (TIRF) microscopy provides high optical-sectioning capability and a good signal-contrast ratio for structures near the surfaces of cells. In recent years, several improvements have been developed, such as variable-angle TIRF (VA-TIRF) and spinning TIRF (sp-TIRF), which permit quantitative image analysis and address non-uniform scattering fringes, respectively. Here, we present a dual-color DMD-based shadowless-illuminated variable-angle TIRF (siva-TIRF) system that provides a uniform illumination field. By adjusting the incidence angle of the illuminating laser on the back focal plane (BFP) of the objective, we can rapidly illuminate biological samples in layers of various thicknesses in TIRF or hollow-cone epi-fluorescence mode. Compared with other methods of accomplishing VA-TIRF/sp-TIRF illumination, our system is simple to build and cost-effective, and it provides optimal multi-plane dual-color images. By showing spatiotemporal correlated movement of clathrin-coated structures with microtubule filaments from various layers of live cells, we demonstrate that cortical microtubules are important spatial regulators of clathrin-coated structures. Moreover, our system can be used to prove superb axial information of three-dimensional movement of structures near the plasma membrane within live cells.
全内反射荧光(TIRF)显微镜为细胞表面附近的结构提供了高光学切片能力和良好的信号对比度。近年来,已经开发了几种改进方法,如可变角度TIRF(VA-TIRF)和旋转TIRF(sp-TIRF),它们分别允许进行定量图像分析和解决非均匀散射条纹问题。在这里,我们展示了一种基于数字微镜器件(DMD)的双色无影照明可变角度TIRF(siva-TIRF)系统,该系统提供均匀的照明场。通过调整照明激光在物镜后焦平面(BFP)上的入射角,我们可以在TIRF或空心锥落射荧光模式下快速照亮不同厚度层的生物样品。与实现VA-TIRF/sp-TIRF照明的其他方法相比,我们的系统易于构建且成本效益高,并且它提供了最佳的多平面双色图像。通过展示来自活细胞不同层的网格蛋白包被结构与微管丝的时空相关运动,我们证明皮质微管是网格蛋白包被结构的重要空间调节因子。此外,我们的系统可用于证明活细胞内质膜附近结构三维运动的出色轴向信息。