The Chinese University of Hong Kong, Department of Mechanical and Automation Engineering, Shatin, Hong Kong.
J Biomed Opt. 2021 Nov;26(11). doi: 10.1117/1.JBO.26.11.116502.
High-speed three-dimensional (3D) super-resolution microscopy is a unique tool to investigate various biological phenomena; yet the technology is not broadly adopted due to its high cost and complex system design.
We present a compact, low-cost, and high-speed 3D structured illumination microscopy (SIM) based on a digital micromirror device and binary holography to visualize fast biological events with super-resolution.
The 3D SIM uses a digital micromirror device to generate three laser foci with individually controllable positions, phases, and amplitudes via binary holography at the back aperture of objective lens to form optimal 3D structured patterns. Fifteen raw images are sequentially recorded and processed by the 3D SIM algorithm to reconstruct a super-resolved image.
Super-resolution 3D imaging at a speed of 26.7 frames per second is achieved with a lateral and axial resolution of 155 and 487 nm, which corresponds to a 1.65- and 1.63-times resolution enhancement, respectively, comparing with standard deconvolution microscopy.
The 3D SIM realizes fast super-resolution imaging with optimal 3D structured illumination, which may find important applications in biophotonics.
高速三维(3D)超分辨率显微镜是研究各种生物现象的独特工具;然而,由于其成本高和系统设计复杂,该技术并未广泛采用。
我们提出了一种基于数字微镜器件和二元全息术的紧凑、低成本、高速 3D 结构光照明显微镜(SIM),用于以超分辨率可视化快速生物事件。
3D SIM 使用数字微镜器件通过二元全息术在物镜的后孔径处生成三个具有单独可控位置、相位和幅度的激光焦点,以形成最佳的 3D 结构图案。通过 3D SIM 算法顺序记录和处理十五个原始图像,以重建超分辨率图像。
以每秒 26.7 帧的速度实现了超分辨率 3D 成像,横向和轴向分辨率分别为 155nm 和 487nm,与标准去卷积显微镜相比,分辨率分别提高了 1.65 倍和 1.63 倍。
3D SIM 通过最佳的 3D 结构照明实现了快速超分辨率成像,这在生物光子学中可能有重要的应用。