Accelerated clearing and molecular labeling of biological tissues using magnetohydrodynamic force

Author:

Dwyer Joseph,Ramirez M. Desmond,Katz Paul S.,Karlstrom Rolf O.,Bergan Joseph

Abstract

AbstractTechniques used to clear biological tissue for fluorescence microscopy are essential to connect anatomical principles at levels ranging from subcellular to the whole animal. Here we report a simple and straightforward approach to efficiently render opaque tissue samples transparent and show that this approach can be modified to rapidly label intact tissue samples with antibodies for large volume fluorescence microscopy. This strategy applies a magnetohydrodynamic (MHD) force to accelerate the removal of lipids from tissue samples at least as large as an intact adult mouse brain. We also show that MHD force can be used to accelerate antibody penetration into tissue samples. This strategy complements a growing array of tools that enable high-resolution 3-dimensional anatomical analyses in intact tissues using fluorescence microscopy. MHD-accelerated clearing is simple, fast, reliable, inexpensive, provides good thermal regulation, and is compatible with existing strategies for high-quality fluorescence microscopy of intact tissues.

Funder

National Institutes of Health

Armstrong Fund for Science

Britton Sanderford

Publisher

Springer Science and Business Media LLC

Subject

Multidisciplinary

Reference24 articles.

1. Schultze, O. Über Herstellung and Conservirung durchsichtigen Embryonen zum Stadium der Skeletbildung. In Verhandlungen der Anatomischen Gesellschaft (Anatomischer Anzeiger), pg. 3–5 (1897).

2. Spalteholz, W. Über das Durchsichtigmachen von menschlichen und tierischen Präparaten und seine theoretischen Bedingungen, nebst Anhang: Über Knochenfärbung. Leipzig: S. Hirzel (1914). 

3. Chung, K. et al. Structural and molecular interrogation of intact biological systems. Nature 497(7449), 332–337. https://doi.org/10.1038/nature12107 (2013).

4. Hama, H. et al. Scale: a chemical approach for fluorescence imaging and reconstruction of transparent mouse brain. Nat. Neurosci. 14, 1481–1488 (2011).

5. Kim, S. Y. et al. Stochastic electrotransport selectively enhances the transport of highly electromobile molecules. PNAS 112(46), E6274–E6283. https://doi.org/10.1073/pnas.1510133112 (2015).

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