Mesoscale volumetric fluorescence imaging at nanoscale resolution by photochemical sectioning.

Wang, Wei; Ruan, Xiongtao; Liu, Gaoxiang; Milkie, Daniel E; Li, Wenping; Betzig, Eric; Upadhyayula, Srigokul; Gao, Ruixuan · Science · 2025

basic_science · Level V

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Abstract

Optical nanoscopy of intact biological specimens has been transformed by recent advancements in hydrogel-based tissue clearing and expansion, enabling the imaging of cellular and subcellular structures with molecular contrast. However, existing high-resolution fluorescence microscopes are physically limited by objective-to-specimen distance, which prevents the study of whole-mount specimens without physical sectioning. To address this challenge, we developed a photochemical strategy for spatially precise sectioning of specimens. By combining serial photochemical sectioning with lattice light-sheet imaging and petabyte-scale computation, we imaged and reconstructed axons and myelin sheaths across entire mouse olfactory bulbs at nanoscale resolution. An olfactory bulb-wide analysis of myelinated and unmyelinated axons revealed distinctive patterns of axon degeneration and de-/dysmyelination in the neurodegenerative brain, highlighting the potential for peta- to exabyte-scale super-resolution studies using this approach.

Medical subject headings