Nanostructure-specific X-ray tomography reveals myelin levels, integrity and axon orientations in mouse and human nervous tissue
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Published:2021-05-19
Issue:1
Volume:12
Page:
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ISSN:2041-1723
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Container-title:Nature Communications
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language:en
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Short-container-title:Nat Commun
Author:
Georgiadis MariosORCID, Schroeter Aileen, Gao ZiruiORCID, Guizar-Sicairos ManuelORCID, Liebi MarianneORCID, Leuze Christoph, McNab Jennifer A.ORCID, Balolia AleezahORCID, Veraart Jelle, Ades-Aron Benjamin, Kim Sunglyoung, Shepherd TimothyORCID, Lee Choong H.ORCID, Walczak Piotr, Chodankar Shirish, DiGiacomo Phillip, David Gergely, Augath Mark, Zerbi ValerioORCID, Sommer StefanORCID, Rajkovic Ivan, Weiss Thomas, Bunk OliverORCID, Yang LinORCID, Zhang Jiangyang, Novikov Dmitry S.ORCID, Zeineh MichaelORCID, Fieremans ElsORCID, Rudin Markus
Abstract
AbstractMyelin insulates neuronal axons and enables fast signal transmission, constituting a key component of brain development, aging and disease. Yet, myelin-specific imaging of macroscopic samples remains a challenge. Here, we exploit myelin’s nanostructural periodicity, and use small-angle X-ray scattering tensor tomography (SAXS-TT) to simultaneously quantify myelin levels, nanostructural integrity and axon orientations in nervous tissue. Proof-of-principle is demonstrated in whole mouse brain, mouse spinal cord and human white and gray matter samples. Outcomes are validated by 2D/3D histology and compared to MRI measurements sensitive to myelin and axon orientations. Specificity to nanostructure is exemplified by concomitantly imaging different myelin types with distinct periodicities. Finally, we illustrate the method’s sensitivity towards myelin-related diseases by quantifying myelin alterations in dysmyelinated mouse brain. This non-destructive, stain-free molecular imaging approach enables quantitative studies of myelination within and across samples during development, aging, disease and treatment, and is applicable to other ordered biomolecules or nanostructures.
Funder
Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung U.S. Department of Health & Human Services | NIH | National Institute of General Medical Sciences
Publisher
Springer Science and Business Media LLC
Subject
General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry
Reference55 articles.
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