4.8 Article

Real-time volumetric microscopy of in vivo dynamics and large-scale samples with SCAPE 2.0

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NATURE METHODS
卷 16, 期 10, 页码 1054-+

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NATURE PUBLISHING GROUP
DOI: 10.1038/s41592-019-0579-4

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资金

  1. NIH Office of Research Infrastructure Program [P40OD010440]
  2. National Institutes of Health BRAIN initiative grants [5U01NS09429, UF1NS108213, U19NS104649, R01HL13143801A1]
  3. National Science Foundation [NSF-GRFP DGE -1644869]
  4. Simons Foundation Collaboration on the Global Brain [542951]
  5. Department of Defense [MURI W911NF-12-1-0594]
  6. Kavli Institute for Brain Science
  7. Coulter Foundation Early Career program
  8. KAKENHI by MEXT, Japan [JP16H06545]
  9. IGERT [0801530]
  10. CAREER [CBET-0954796]
  11. Columbia-Coulter Translational Research Partnership
  12. Division Of Graduate Education
  13. Direct For Education and Human Resources [0801530] Funding Source: National Science Foundation

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The limited per-pixel bandwidth of most microscopy methods requires compromises between field of view, sampling density and imaging speed. This limitation constrains studies involving complex motion or fast cellular signaling, and presents a major bottleneck for high-throughput structural imaging. Here, we combine high-speed intensified camera technology with a versatile, reconfigurable and dramatically improved Swept, Confocally Aligned Planar Excitation (SCAPE) microscope design that can achieve high-resolution volumetric imaging at over 300 volumes per second and over 1.2 GHz pixel rates. We demonstrate near-isotropic sampling in freely moving Caenorhabditis elegans, and analyze real-time blood flow and calcium dynamics in the beating zebrafish heart. The same system also permits high-throughput structural imaging of mounted, intact, cleared and expanded samples. SCAPE 2.0's significantly lower photodamage compared to point-scanning techniques is also confirmed. Our results demonstrate that SCAPE 2.0 is a powerful, yet accessible imaging platform for myriad emerging high-speed dynamic and high-throughput volumetric microscopy applications.

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