4.8 Article

A hybrid open-top light-sheet microscope for versatile multi-scale imaging of cleared tissues

Journal

NATURE METHODS
Volume 19, Issue 5, Pages 613-+

Publisher

NATURE PORTFOLIO
DOI: 10.1038/s41592-022-01468-5

Keywords

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Funding

  1. National Institutes of Health (NIH) [K99 CA240681, R01CA244170, R01EB031002, R01GM079712, R01DK107436, R01DK092202, R01MH117820, R01NS104949]
  2. Department of Defense (DoD) Prostate Cancer Research Program (PCRP) [W81XWH-18-10358, W81XWH-19-1-0589, W81XWH-20-1-0039]
  3. Prostate Cancer Young Investigator Award
  4. National Science Foundation (NSF) Graduate Research Fellowship [DGE-1762114]
  5. NSF [1934292 HDR: I-DIRSE-FW]
  6. Washington Research Foundation Postdoctoral Fellowship
  7. Science and Technology Platform Program for Advanced Biological Medicine by the Japan Agency for Medical Research and Development (AMED) [JP21am0401011]
  8. ERATO by Japan Science and Technology Agency (JST) [JPMJER2001]
  9. HFSP Research Grant Program [RGP0019/2018]
  10. AMED-PRIME [JP21gm6210027]
  11. JSPS KAKENHI [17H06328, 20K1612]
  12. NIH-COBRE [5P20GM104318-08]
  13. DFG [429469366]
  14. FWF [P31263-B26]
  15. WWTF [CS19-019]
  16. Grants-in-Aid for Scientific Research [17H06328] Funding Source: KAKEN

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This article introduces a flexible hybrid light-sheet microscope system that can meet the requirements of different imaging applications, including resolution, sample size, and transparent sample holder material. Experimental results demonstrate that the system can efficiently image sparse axons and perform high-throughput automated imaging of multiple specimens.
Light-sheet microscopy has emerged as the preferred means for high-throughput volumetric imaging of cleared tissues. However, there is a need for a flexible system that can address imaging applications with varied requirements in terms of resolution, sample size, tissue-clearing protocol, and transparent sample-holder material. Here, we present a 'hybrid' system that combines a unique non-orthogonal dual-objective and conventional (orthogonal) open-top light-sheet (OTLS) architecture for versatile multi-scale volumetric imaging. We demonstrate efficient screening and targeted sub-micrometer imaging of sparse axons within an intact, cleared mouse brain. The same system enables high-throughput automated imaging of multiple specimens, as spotlighted by a quantitative multi-scale analysis of brain metastases. Compared with existing academic and commercial light-sheet microscopy systems, our hybrid OTLS system provides a unique combination of versatility and performance necessary to satisfy the diverse requirements of a growing number of cleared-tissue imaging applications. A 'hybrid' open-top light-sheet microscope is described, which can be used for broad multi-scale volumetric imaging of one or more large tissues, cleared with diverse protocols, and conveniently mounted on an array of sample holders.

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