Lu Zhi, Zuo Siqing, Shi Minghui, Fan Jiaqi, Xie Jingyu, Xiao Guihua, Yu Li, Wu Jiamin, Dai Qionghai
Department of Automation, Tsinghua University, Beijing, China.
Institute for Brain and Cognitive Sciences, Tsinghua University, Beijing, China.
Nat Biotechnol. 2025 Apr;43(4):569-580. doi: 10.1038/s41587-024-02249-5. Epub 2024 May 27.
Long-term observation of subcellular dynamics in living organisms is limited by background fluorescence originating from tissue scattering or dense labeling. Existing confocal approaches face an inevitable tradeoff among parallelization, resolution and phototoxicity. Here we present confocal scanning light-field microscopy (csLFM), which integrates axially elongated line-confocal illumination with the rolling shutter in scanning light-field microscopy (sLFM). csLFM enables high-fidelity, high-speed, three-dimensional (3D) imaging at near-diffraction-limit resolution with both optical sectioning and low phototoxicity. By simultaneous 3D excitation and detection, the excitation intensity can be reduced below 1 mW mm, with 15-fold higher signal-to-background ratio over sLFM. We imaged subcellular dynamics over 25,000 timeframes in optically challenging environments in different species, such as migrasome delivery in mouse spleen, retractosome generation in mouse liver and 3D voltage imaging in Drosophila. Moreover, csLFM facilitates high-fidelity, large-scale neural recording with reduced crosstalk, leading to high orientation selectivity to visual stimuli, similar to two-photon microscopy, which aids understanding of neural coding mechanisms.
对活生物体中亚细胞动力学的长期观察受到组织散射或密集标记产生的背景荧光的限制。现有的共聚焦方法在并行化、分辨率和光毒性之间面临不可避免的权衡。在此,我们展示了共聚焦扫描光场显微镜(csLFM),它将轴向拉长的线共聚焦照明与扫描光场显微镜(sLFM)中的卷帘快门相结合。csLFM能够以近衍射极限分辨率实现高保真、高速的三维(3D)成像,兼具光学切片和低光毒性。通过同时进行3D激发和检测,激发强度可降低至1 mW/mm以下,与sLFM相比,信噪比提高了15倍。我们在不同物种的光学挑战性环境中对超过25000个时间帧的亚细胞动力学进行了成像,如小鼠脾脏中的迁移体传递、小鼠肝脏中的收缩体生成以及果蝇中的3D电压成像。此外,csLFM有助于进行具有降低串扰的高保真、大规模神经记录,从而实现对视觉刺激的高方向选择性,类似于双光子显微镜,这有助于理解神经编码机制。