| Literature DB >> 34038702 |
Jiamin Wu1, Zhi Lu1, Dong Jiang2, Yuduo Guo3, Hui Qiao1, Yi Zhang4, Tianyi Zhu4, Yeyi Cai4, Xu Zhang5, Karl Zhanghao6, Hao Xie1, Tao Yan4, Guoxun Zhang4, Xiaoxu Li4, Zheng Jiang2, Xing Lin7, Lu Fang8, Bing Zhou9, Peng Xi6, Jingtao Fan10, Li Yu11, Qionghai Dai12.
Abstract
Long-term subcellular intravital imaging in mammals is vital to study diverse intercellular behaviors and organelle functions during native physiological processes. However, optical heterogeneity, tissue opacity, and phototoxicity pose great challenges. Here, we propose a computational imaging framework, termed digital adaptive optics scanning light-field mutual iterative tomography (DAOSLIMIT), featuring high-speed, high-resolution 3D imaging, tiled wavefront correction, and low phototoxicity with a compact system. By tomographic imaging of the entire volume simultaneously, we obtained volumetric imaging across 225 × 225 × 16 μm3, with a resolution of up to 220 nm laterally and 400 nm axially, at the millisecond scale, over hundreds of thousands of time points. To establish the capabilities, we investigated large-scale cell migration and neural activities in different species and observed various subcellular dynamics in mammals during neutrophil migration and tumor cell circulation.Entities:
Keywords: adaptive optics; calcium imaging; intravital; light-field microscopy; long-term high-speed imaging; migrasome; phototoxicity; retraction fiber; tumor metastasis
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Year: 2021 PMID: 34038702 DOI: 10.1016/j.cell.2021.04.029
Source DB: PubMed Journal: Cell ISSN: 0092-8674 Impact factor: 41.582