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Interferometric Ultra-High Resolution 3D Imaging through Brain Sections

Gao, H.-C.; Xu, F.; Cheng, X.; Bi, C.; Zheng, Y.; Li, Y.; Chen, T.; Li, Y.; Chubykin, A. A.; Huang, F.

2025-02-06 neuroscience
10.1101/2025.02.03.636258 bioRxiv
Show abstract

Single-molecule super-resolution microscopy allows pin-pointing individual molecular positions in cells with nanometer precision. However, achieving molecular resolution through tissues is often difficult because of optical scattering and aberrations. We introduced 4Pi single-molecule nanoscopy for brain with in-situ point spread function retrieval through opaque tissue (4Pi-BRAINSPOT), integrating 4Pi single-molecule switching nanoscopy with dynamic in-situ coherent PSF modeling, single-molecule compatible tissue clearing, light-sheet illumination, and a novel quantitative analysis pipeline utilizing the highly accurate 3D molecular coordinates. This approach enables the quantification of protein distribution with sub-15-nm resolution in all three dimensions in complex tissue specimens. We demonstrated 4Pi-BRAINSPOTs capacities in revealing the molecular arrangements in various sub-cellular organelles and resolved the membrane morphology of individual dendritic spines through 50-{micro}m transgenic mouse brain slices. This ultra-high-resolution approach allows us to decipher nanoscale organelle architecture and molecular distribution in both isolated cells and native tissue environments with precision down to a few nanometers.

Published in Nature Communications (predicted rank #2) · training set

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