| Literature DB >> 36180532 |
Ravian L van Ineveld1,2, Raphaël Collot1,2, Mario Barrera Román1,2, Anna Pagliaro1,2, Nils Bessler1,2, Hendrikus C R Ariese1,2, Michiel Kleinnijenhuis1,2, Marcel Kool1,3,4, Maria Alieva1,2, Susana M Chuva de Sousa Lopes5, Ellen J Wehrens1,2, Anne C Rios6,7.
Abstract
Revealing the 3D composition of intact tissue specimens is essential for understanding cell and organ biology in health and disease. State-of-the-art 3D microscopy techniques aim to capture tissue volumes on an ever-increasing scale, while also retaining sufficient resolution for single-cell analysis. Furthermore, spatial profiling through multi-marker imaging is fast developing, providing more context and better distinction between cell types. Following these lines of technological advance, we here present a protocol based on FUnGI (fructose, urea and glycerol clearing solution for imaging) optical clearing of tissue before multispectral large-scale single-cell resolution 3D (mLSR-3D) imaging, which implements 'on-the-fly' linear unmixing of up to eight fluorophores during a single acquisition. Our protocol removes the need for repetitive illumination, thereby allowing larger volumes to be scanned with better image quality in less time, also reducing photo-bleaching and file size. To aid in the design of multiplex antibody panels, we provide a fast and manageable intensity equalization assay with automated analysis to design a combination of markers with balanced intensities suitable for mLSR-3D. We demonstrate effective mLSR-3D imaging of various tissues, including patient-derived organoids and xenografted tumors, and, furthermore, describe an optimized workflow for mLSR-3D imaging of formalin-fixed paraffin-embedded samples. Finally, we provide essential steps for 3D image data processing, including shading correction that does not require pre-acquired shading references and 3D inhomogeneity correction to correct fluorescence artefacts often afflicting 3D datasets. Together, this provides a one-week protocol for eight-fluorescent-marker 3D visualization and exploration of intact tissue of various origins at single-cell resolution.Entities:
Year: 2022 PMID: 36180532 DOI: 10.1038/s41596-022-00739-x
Source DB: PubMed Journal: Nat Protoc ISSN: 1750-2799 Impact factor: 17.021