Clearing for Deep Tissue Imaging. 2018

Michael Muntifering, and Daniel Castranova, and Gregory A Gibson, and Evan Meyer, and Matthew Kofron, and Alan M Watson
Division of Developmental Biology, Cincinnati Children's Research Foundation, Cincinnati, Ohio.

Biologic tissues are generally opaque due to optical properties that result in scattering and absorption of light. Preparation of tissues for optical microscopy often involves sectioning to a thickness of 50-100 µm, the practical limits of light penetration and recovery. A researcher who wishes to image a whole tissue must acquire potentially hundreds of individual sections before rendering them into a three-dimensional volume. Clearing removes strongly light-scattering and light-absorbing components of a tissue and equalizes the refractive index of the imaging medium to that of the tissue. After clearing, the maximum depth of imaging is often defined by the microscope optics rather than the tissue. Such visibility enables the interrogation of whole tissues and even animals without the need to section. Researchers can study a biological process in the context of its three-dimensional environment, identify rare events in large volumes of tissues, and trace cells and cell-cell interactions over large distances. This article describes four popular clearing protocols that are relevant to a wide variety of scenarios across biologic disciplines: CUBIC, CLARITY, 3DISCO, and SeeDB. © 2018 by John Wiley & Sons, Inc.

UI MeSH Term Description Entries
D003663 Decision Trees A graphic device used in decision analysis, series of decision options are represented as branches (hierarchical). Decision Tree,Tree, Decision,Trees, Decision
D005453 Fluorescence The property of emitting radiation while being irradiated. The radiation emitted is usually of longer wavelength than that incident or absorbed, e.g., a substance can be irradiated with invisible radiation and emit visible light. X-ray fluorescence is used in diagnosis.
D000818 Animals Unicellular or multicellular, heterotrophic organisms, that have sensation and the power of voluntary movement. Under the older five kingdom paradigm, Animalia was one of the kingdoms. Under the modern three domain model, Animalia represents one of the many groups in the domain EUKARYOTA. Animal,Metazoa,Animalia
D012997 Solvents Liquids that dissolve other substances (solutes), generally solids, without any change in chemical composition, as, water containing sugar. (Grant & Hackh's Chemical Dictionary, 5th ed) Solvent
D013194 Staining and Labeling The marking of biological material with a dye or other reagent for the purpose of identifying and quantitating components of tissues, cells or their extracts. Histological Labeling,Staining,Histological Labelings,Labeling and Staining,Labeling, Histological,Labelings, Histological,Stainings
D051379 Mice The common name for the genus Mus. Mice, House,Mus,Mus musculus,Mice, Laboratory,Mouse,Mouse, House,Mouse, Laboratory,Mouse, Swiss,Mus domesticus,Mus musculus domesticus,Swiss Mice,House Mice,House Mouse,Laboratory Mice,Laboratory Mouse,Mice, Swiss,Swiss Mouse,domesticus, Mus musculus
D021621 Imaging, Three-Dimensional The process of generating three-dimensional images by electronic, photographic, or other methods. For example, three-dimensional images can be generated by assembling multiple tomographic images with the aid of a computer, while photographic 3-D images (HOLOGRAPHY) can be made by exposing film to the interference pattern created when two laser light sources shine on an object. Computer-Assisted Three-Dimensional Imaging,Imaging, Three-Dimensional, Computer Assisted,3-D Image,3-D Imaging,Computer-Generated 3D Imaging,Three-Dimensional Image,Three-Dimensional Imaging, Computer Generated,3 D Image,3 D Imaging,3-D Images,3-D Imagings,3D Imaging, Computer-Generated,3D Imagings, Computer-Generated,Computer Assisted Three Dimensional Imaging,Computer Generated 3D Imaging,Computer-Assisted Three-Dimensional Imagings,Computer-Generated 3D Imagings,Image, 3-D,Image, Three-Dimensional,Images, 3-D,Images, Three-Dimensional,Imaging, 3-D,Imaging, Computer-Assisted Three-Dimensional,Imaging, Computer-Generated 3D,Imaging, Three Dimensional,Imagings, 3-D,Imagings, Computer-Assisted Three-Dimensional,Imagings, Computer-Generated 3D,Imagings, Three-Dimensional,Three Dimensional Image,Three Dimensional Imaging, Computer Generated,Three-Dimensional Images,Three-Dimensional Imaging,Three-Dimensional Imaging, Computer-Assisted,Three-Dimensional Imagings,Three-Dimensional Imagings, Computer-Assisted

Related Publications

Michael Muntifering, and Daniel Castranova, and Gregory A Gibson, and Evan Meyer, and Matthew Kofron, and Alan M Watson
January 2016, PloS one,
Michael Muntifering, and Daniel Castranova, and Gregory A Gibson, and Evan Meyer, and Matthew Kofron, and Alan M Watson
March 2021, The Journal of international medical research,
Michael Muntifering, and Daniel Castranova, and Gregory A Gibson, and Evan Meyer, and Matthew Kofron, and Alan M Watson
June 2021, Nature protocols,
Michael Muntifering, and Daniel Castranova, and Gregory A Gibson, and Evan Meyer, and Matthew Kofron, and Alan M Watson
April 2021, iScience,
Michael Muntifering, and Daniel Castranova, and Gregory A Gibson, and Evan Meyer, and Matthew Kofron, and Alan M Watson
November 2017, Angiogenesis,
Michael Muntifering, and Daniel Castranova, and Gregory A Gibson, and Evan Meyer, and Matthew Kofron, and Alan M Watson
August 2022, Biomedical optics express,
Michael Muntifering, and Daniel Castranova, and Gregory A Gibson, and Evan Meyer, and Matthew Kofron, and Alan M Watson
January 2020, Methods in molecular biology (Clifton, N.J.),
Michael Muntifering, and Daniel Castranova, and Gregory A Gibson, and Evan Meyer, and Matthew Kofron, and Alan M Watson
January 2023, Methods in molecular biology (Clifton, N.J.),
Michael Muntifering, and Daniel Castranova, and Gregory A Gibson, and Evan Meyer, and Matthew Kofron, and Alan M Watson
August 2021, Biomedical optics express,
Michael Muntifering, and Daniel Castranova, and Gregory A Gibson, and Evan Meyer, and Matthew Kofron, and Alan M Watson
January 2022, Methods in molecular biology (Clifton, N.J.),
Copied contents to your clipboard!